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Data for Water deficit and potassium affect carbon isotope composition in cassava bulk leaf material and extracted carbohydrates
<p>This repository contains data and scripts to reproduce results that are presented in the manuscript: Van Laere, J., Merckx, R., Hood-Nowotny, R., Dercon, G. (2023) Water deficit and potassium affect carbon isotope composition in cassava bulk leaf material and extracted carbohydrates. <em>Front. Plant Sci</em>. 14:1222558 doi: 10.3389/fpls.2023.1222558</p>
NEON Biorepository Soil Microbe Collection (DNA Extracts ) (repackaging of occurrences published by the NEON Biorepository Data Portal)
This collection contains genetic extracts from soil microbes collected during periodic soil sampling at NEON terrestrial sites (NEON sample class: mic_dnaExtraction_in.soilDnaSampleID). Three unique locations are sampled per plot with ten soil plots per site. Bouts occur three times per year in order to capture the prevailing conditions at the site during different seasons, except in Alaska where there only 1 bout is possible. However, the frequency of genetic analysis and thus DNA archiving varies by site type. Soil sampling is conducted to a maximum depth of 30 ± 1 cm, and when organic (O) and mineral (M) horizons are present within a single profile, they are separated prior to analysis and archiving. However, other sub-horizons are not separated. During the majority of bouts, only the top horizon (O if present, else M) is analyzed for genetic content. Soils are homogenized and non-soil material is removed by hand in the field, then subsamples are immediately frozen on dry ice. They are maintained in ultra-low temperature freezers until they are shipped to an analytical facility for DNA extraction, sample preparation and sequencing. During peak greenness bouts, subsamples from each of the 3 sampling locations per plot are combined to form a plot-level composite that is used for metagenomics analysis. Laboratory metadata are delivered to NEON for QC testing and acceptance, and then formatted for upload to public sequence repositories. Genetic extracts are shipped from the analytical facility in 96-well plates to the NEON Biorepository to be archived at -80 degrees Celsius. See links below for NEON data products that provide physical, chemical, and biological measurements for these same soils (soil pH, moisture, and microbial properties are always measured; chemical properties are determined only for a subset of collection bouts). The metabarcoding protocol used by Battelle Applied Genomics is available in the NEON document library (https://data.neonscience.org/docu
SSH data set used for Rossby Wave Analysis, extraction from ORCA12.L46-MJM189 DRAKKAR simulation
<p>This data set corresponds to the Sea Surface Heigh (SSH) silmulated by the NEMO ocean circulation model, under the ORCA12.L46-MJM189 configuration, developped in the frame of the DRAKKAR project. This particular data set is an extraction from the native numerical grid, covering the area between 38N and 40N in the North Altantic ocean, for the period 1970 to 2015. The data are concatenated in a single file with 5-days average of SSH. The corresponding metrics for this sub domain are also present in this netcdf file. This subset was used in Watelet et al. (2020) submitted paper, dealing with Rossby waves analysis.</p>
Monthly averaged sprite and chemical data extracted from EMAC simulations including sprites (T42L90MA resolution)
<p>About dataset</p> <p>Monthly averaged sprite and chemical data extracted from 2-year EMAC simulations including sprites (between 1 January, 2000 and 1 January, 2002, T42L90MA resolution)</p> <p>Authors: Francisco J. Perez-Invernón, Francisco J. Gordillo-Vázquez, Alejandro Malagón-Romero, Patrick Jöckel</p> <p>Description of the data</p> <p>sps_yyyymm.nc:</p> <p>sps: Sprites per second</p> <p><span><a href="../api/records/10554170/draft/files/SPRI_2_________20010101_0000_tr_NOx_NOy_m.nc/content" target="_blank" rel="noopener noreferrer">SPRI_2_________yyyymmdd_0000_tr_NOx_NOy_m.nc</a></span> and <span><a href="../api/records/10554170/draft/files/SPRI_2_________20010101_0000_tr_NOx_NOy_m.nc/content" target="_blank" rel="noopener noreferrer">SPRI_2_________yyyymmdd_0000_tr_Ox_HOx_m.nc</a></span> (SPRI-M simulation):</p> <p>NO: Vertical mixing ratio of NO</p> <p>NO2: Vertical mising ratio of NO2</p> <p>N2O: Vertical mixing ratio of N2O</p> <p>HNO3: Vertical mixing ratio of HNO3</p> <p>HNO4: Vertical mixing ratio of HNO4</p> <p>OH: Vertical mixing ratio of OH</p> <p>HO2: Vertical mixing ratio of HO2</p> <p>H: Vertical mixing ratio of H</p> <p><span><a href="../api/records/10554170/draft/files/SPRI_SMI_2_____20010701_0000_tr_NOx_NOy_m.nc/content" target="_blank" rel="noopener noreferrer">SPRI_SMI_2_____yyyymmdd_0000_tr_NOx_NOy_m.nc</a></span> and <span><a href="../api/records/10554170/draft/files/SPRI_SMI_2_____20010701_0000_tr_NOx_NOy_m.nc/content" target="_blank" rel="noopener noreferrer">SPRI_SMI_2_____yyyymmdd_0000_tr_Ox_HOx_m.nc</a></span> (SPRI-M simulation):</p> <p>NO: Vertical mixing ratio of NO</p> <p>NO2: Vertical mising ratio of NO2</p> <p>N2O: Vertical mixing ratio of N2O</p> <p>HNO3: Vertical mixing ratio of HNO3</p> <p>HNO4: Vertical mixing ratio of HNO4</p> <p>OH: Vertical mixing ratio of OH</p> <p>HO2: Vertical mixing ratio of HO2</p> <p>H: Vertical mixing ratio of H</p> <p> </p> <p><span><a href="../api/records/10554170/draft/files/SPRI_SMI_2_____20010701_0000_tr_NOx_NOy_m.nc/content" target="_blank" rel="noopener noreferrer">SPRI_ctr_______yyyymmdd_0000_tr_NOx_NOy_m.nc</a></span> and <span><a href="../api/records/10554170/draft/files/SPRI_ctr_______20010101_0000_tr_NOx_NOy_m.nc/content" target="_blank" rel="noopener noreferrer">SPRI_ctr_______yyyymmdd_0000_tr_NOx_NOy_m.nc</a></span> (CTRL simulation):</p> <p>NO: Vertical mixing ratio of NO</p> <p>NO2: Vertical mising ratio of NO2</p> <p>N2O: Vertical mixing ratio of N2O</p> <p>HNO3: Vertical mixing ratio of HNO3</p> <p>HNO4: Vertical mixing ratio of HNO4</p> <p>OH: Vertical mixing ratio of OH</p> <p>HO2: Vertical mixing ratio of HO2</p> <p>H: Vertical mixing ratio of H</p> <p> </p> <p>Example:</p> <p>netcdf SPRI_2_________20010101_0000_tr_NOx_NOy_m {<br>dimensions:<br> time = UNLIMITED ; // (1 currently)<br> lon = 128 ;<br> lat = 64 ;<br> lev = 90 ;<br> tbnds = 2 ;<br>variables:<br> double time(time) ;<br> time:long_name = "time" ;<br> time:bounds = "time_bnds" ;<br> time:units = "day since 2000-01-01 00:00:00" ;<br> time:calendar = "gregorian" ;<br> double YYYYMMDD(time) ;<br> YYYYMMDD:long_name = "time" ;<br> YYYYMMDD:units = "days as %Y%m%d.%f" ;<br> YYYYMMDD:calendar = "gregorian" ;<br> double dt(time) ;<br> dt:long_name = "delta_time" ;<br> dt:units = "s" ;<br> double nstep(time) ;<br> nstep:long_name = "current time step" ;<br> float lon(lon) ;<br> lon:long_name = "longitude" ;<br> lon:units = "degrees_east" ;<br> float lat(lat) ;<br> lat:long_name = "latitude" ;<br> lat:units = "degrees_north" ;<br> float lev(lev) ;<br> lev:long_name = "hybrid level at layer midpoints" ;<br> lev:standard_name = "hybrid_sigma_pressure" ;<br> lev:units = "level" ;<br> lev:positive = "down" ;<br> lev:formula = "hyam hybm (press=hyam+hybm*aps)" ;<br> lev:borders = "ilev" ;<br> float hyam(lev) ;<br> hyam:long_name = "hybrid A coefficient at layer midpoints" ;<br> hyam:units = "Pa" ;<br> float hybm(lev) ;<br> hybm:long_name = "hybrid B coefficient at layer midpoints" ;<br> hybm:units = "1" ;<br> float aps(time, lat, lon) ;<br> aps:long_name = "surface pressure" ;<br> aps:units = "Pa" ;<br> aps:representation = "GP_2D_HORIZONTAL" ;<br> aps:grid_type = "gaussian" ;<br> aps:table = 128 ;<br> aps:code = 134 ;<br> aps:REFERENCE_TO = "g3b: aps" ;<br> aps:coordinates = "lon lat" ;<br> aps:cell_methods = "time: point" ;<br> float aps_ave(time, lat, lon) ;<br> aps_ave:long_name = "surface pressure" ;<br> aps_ave:units = "Pa" ;<br> aps_ave:representation = "GP_2D_HORIZONTAL" ;<br> aps_ave:grid_type = "gaussian" ;<br> aps_ave:table = 128 ;<br> aps_ave:code = 134 ;<br> aps_ave:REFERENCE_TO = "g3b: aps" ;<br> aps_ave:coordinates = "lon lat" ;<br> aps_ave:cell_methods = "time: mean" ;<br> float geosp(time, lat, lon) ;<br> geosp:long_name = "surface geopotential (orography)" ;<br> geosp:units = "m**2/s**2" ;<br> geosp:representation = "GP_2D_HORIZONTAL" ;<br> geosp:grid_type = "gaussian" ;<br> geosp:table = 128 ;<br> geosp:code = 129 ;<br> geosp:REFERENCE_TO = "g3b: geosp" ;<br> geosp:coordinates = "lon lat" ;<br> geosp:cell_methods = "time: point" ;<br> float geosp_ave(time, lat, lon) ;<br> geosp_ave:long_name = "surface geopotential (orography)" ;<br> geosp_ave:units = "m**2/s**2" ;<br> geosp_ave:representation = "GP_2D_HORIZONTAL" ;<br> geosp_ave:grid_type = "gaussian" ;<br> geosp_ave:table = 128 ;<br> geosp_ave:code = 129 ;<br> geosp_ave:REFERENCE_TO = "g3b: geosp" ;<br> geosp_ave:coordinates = "lon lat" ;<br> geosp_ave:cell_methods = "time: mean" ;<br> float gboxarea(time, lat, lon) ;<br> gboxarea:units = "m^2" ;<br> gboxarea:representation = "GP_2D_HORIZONTAL" ;<br> gboxarea:grid_type = "gaussian" ;<br> gboxarea:code = -1 ;<br> gboxarea:REFERENCE_TO = "geoloc: gboxarea" ;<br> gboxarea:coordinates = "lon lat" ;<br> gboxarea:cell_methods = "time: point" ;<br> float gboxarea_ave(time, lat, lon) ;<br> gboxarea_ave:units = "m^2" ;<br> gboxarea_ave:representation = "GP_2D_HORIZONTAL" ;<br> gboxarea_ave:grid_type = "gaussian" ;<br> gboxarea_ave:code = -1 ;<br> gboxarea_ave:REFERENCE_TO = "geoloc: gboxarea" ;<br> gboxarea_ave:coordinates = "lon lat" ;<br> gboxarea_ave:cell_methods = "time: mean" ;<br> float N(time, lev, lat, lon) ;<br> N:long_name = "" ;<br> N:standard_name = "" ;<br> N:units = "mol/mol" ;<br> N:submodel = "mecca" ;<br> N:index = 64 ;<br> N:medium = "AIR" ;<br> N:quantity = "AMOUNTFRACTION" ;<br> N:type = "SINGLE" ;<br> N:number_of_timelevels = -1 ;<br> N:charge = "UNDEFINED" ;<br> N:advect = "OFF" ;<br> N:convect = "OFF" ;<br> N:vdiff = "OFF" ;<br> N:drydep = "OFF" ;<br> N:sedi = "OFF" ;<br> N:scav = "OFF" ;<br> N:mix = "ON" ;<br> N:force_col = "OFF" ;<br> N:integrate = "ON" ;<br> N:timefilter = "ON" ;<br> N:force_init = "OFF" ;<br> N:aerosol_method = "MODAL" ;<br> N:aerosol_mode = "0" ;<br> N:aerosol_sol = "ON" ;<br> N:aerosol_hetice = "OFF" ;<br> N:hori_diff = "OFF" ;<br> N:relaxation = "FULL" ;<br> N:mmd_init = "OFF" ;<br> N:tag_reg_idt = "64" ;<br> N:tag_specific = "0" ;<br> N:initial\ type = "FILE" ;<br> N:lateral_bounds = "FILE" ;<br> N:damping = "ON" ;<br> N:grib\ table\ num = "-1" ;<br> N:grib\ param\ num = "-1" ;<br> N:mtskip = "OFF" ;<br> N:bot_bound_cond = "ZERO FLUX" ;<br> N:SPPT = "OFF" ;<br> N:blockphy = "OFF" ;<br> N:feedback = "ON" ;<br> N:molarmass = 14.01f ;<br> N:Henry_T0 = -9.99999f ;<br> N:Henry_Tdep = -9.99999f ;<br> N:Sechenov = 9.99999f ;<br> N:alpha_T0 = 0.1f ;<br> N:alpha_Tdep = 0.f ;<br> N:K_acid = 9.99999f ;<br> N:K_acid2 = 9.99999f ;<br> N:Vmol_bp = 9.99999f ;<br> N:psat = 9.99999f ;<br> N:psat_Tdep = 9.99999f ;<br> N:pss = -9.99999f ;<br> N:dryreac_sf = -9.99999f ;<br> N:aerosol_density = 1000.f ;<br> N:vini = 0.f ;<br> N:casrn = "?" ;<br> N:aerosol_model = "" ;<br> N:REFERENCE_TO = "tracer_gp: N" ;<br> N:coordinates = "lon lat" ;<br> N:cell_methods = "time: point" ;<br> float N_ave(time, lev, lat, lon) ;<br> N_ave:long_name = "" ;<br> N_ave:standard_name = "" ;<br> N_ave:units = "mol/mol" ;<br> N_ave:submodel = "mecca" ;<br> N_ave:index = 64 ;<br> N_ave:medium = "AIR" ;<br> N_ave:quantity = "AMOUNTFRACTION" ;<br> N_ave:type = "SINGLE" ;<br> N_ave:number_of_timelevels = -1 ;<br> N_ave:charge = "UNDEFINED" ;<br> N_ave:advect = "OFF" ;<br> N_ave:convect = "OFF" ;<br> N_ave:vdiff = "OFF" ;<br> N_ave:drydep = "OFF" ;<br> N_ave:sedi = "OFF" ;<br> N_ave:scav = "OFF" ;<br> N_ave:mix = "ON" ;<br> N_ave:force_col = "OFF" ;<br> N_ave:integrate = "ON" ;<br> N_ave:timefilter = "ON" ;<br> N_ave:force_init = "OFF" ;<br> N_ave:aerosol_method = "MODAL" ;<br> N_ave:aerosol_mode = "0" ;<br> N_ave:aerosol_sol = "ON" ;<br> N_ave:aerosol_hetice = "OFF" ;<br> N_ave:hori_diff = "OFF" ;<br> N_ave:relaxation = "FULL" ;<br> N_ave:mmd_init = "OFF" ;<br> N_ave:tag_reg_idt = "64" ;<br> N_ave:tag_specific = "0" ;<br> N_ave:initial\ type = "FILE" ;<br> N_ave:lateral_bounds = "FILE" ;<br> N_ave:damping = "ON" ;<br> N_ave:grib\ table\ num = "-1" ;<br> N_ave:grib\ param\ num = "-1" ;<br> N_ave:mtskip = "OFF" ;<br> N_ave:bot_bound_cond = "ZERO FLUX" ;<br> N_ave:SPPT = "OFF" ;<br> N_ave:blockphy = "OFF" ;<br> N_ave:feedback = "ON" ;<br> N_ave:molarmass = 14.01f ;<br> N_ave:Henry_T0 = -9.99999f ;<br> N_ave:Henry_Tdep = -9.99999f ;<br> N_ave:Sechenov = 9.99999f ;<br> N_ave:alpha_T0 = 0.1f ;<br> N_ave:alpha_Tdep = 0.f ;<br> N_ave:K_acid = 9.99999f ;<br> N_ave:K_acid2 = 9.99999f ;<br> N_ave:Vmol_bp = 9.99999f ;<br> N_ave:psat = 9.99999f ;<br> N_ave:psat_Tdep = 9.99999f ;<br> N_ave:pss = -9.99999f ;<br> N_ave:dryreac_sf = -9.99999f ;<br> N_ave:aerosol_density = 1000.f ;<br> N_ave:vini = 0.f ;<br> N_ave:casrn = "?" ;<br> N_ave:aerosol_model = "" ;<br> N_ave:REFERENCE_TO = "tracer_gp: N" ;<br> N_ave:coordinates = "lon lat" ;<br> N_ave:cell_methods = "time: mean" ;<br> float N2(time, lev, lat, lon) ;<br> N2:long_name = "" ;<br> N2:standard_name = "" ;<br> N2:units = "mol/mol" ;<br> N2:submodel = "mecca" ;<br> N2:index = 157 ;<br> N2:medium = "AIR" ;<br> N2:quantity = "AMOUNTFRACTION" ;<br> N2:type = "SINGLE" ;<br> N2:number_of_timelevels = -1 ;<br> N2:charge = "UNDEFINED" ;<br> N2:advect = "OFF" ;<br> N2:convect = "OFF" ;<br> N2:vdiff = "OFF" ;<br> N2:drydep = "OFF" ;<br> N2:sedi = "OFF" ;<br> N2:scav = "OFF" ;<br> N2:mix = "ON" ;<br> N2:force_col = "OFF" ;<br> N2:integrate = "ON" ;<br> N2:timefilter = "ON" ;<br> N2:force_init = "OFF" ;<br> N2:aerosol_method = "MODAL" ;<br> N2:aerosol_mode = "0" ;<br> N2:aerosol_sol = "ON" ;<br> N2:aerosol_hetice = "OFF" ;<br> N2:hori_diff = "OFF" ;<br> N2:relaxation = "FULL" ;<br> N2:mmd_init = "OFF" ;<br> N2:tag_reg_idt = "157" ;<br> N2:tag_specific = "0" ;<br> N2:initial\ type = "FILE" ;<br> N2:lateral_bounds = "FILE" ;<br> N2:damping = "ON" ;<br> N2:grib\ table\ num = "-1" ;<br> N2:grib\ param\ num = "-1" ;<br> N2:mtskip = "OFF" ;<br> N2:bot_bound_cond = "ZERO FLUX" ;<br> N2:SPPT = "OFF" ;<br> N2:blockphy = "OFF" ;<br> N2:feedback = "ON" ;<br> N2:molarmass = 28.02f ;<br> N2:Henry_T0 = 0.000652f ;<br> N2:Henry_Tdep = -9.99999f ;<br> N2:Sechenov = 9.99999f ;<br> N2:alpha_T0 = 0.1f ;<br> N2:alpha_Tdep = 0.f ;<br> N2:K_acid = 9.99999f ;<br> N2:K_acid2 = 9.99999f ;<br> N2:Vmol_bp = 9.99999f ;<br> N2:psat = 9.99999f ;<br> N2:psat_Tdep = 9.99999f ;<br> N2:pss = -9.99999f ;<br> N2:dryreac_sf = -9.99999f ;<br> N2:aerosol_density = 1000.f ;<br> N2:vini = 0.78f ;<br> N2:casrn = "?" ;<br> N2:aerosol_model = "" ;<br> N2:REFERENCE_TO = "tracer_gp: N2" ;<br> N2:coordinates = "lon lat" ;<br> N2:cell_methods = "time: point" ;<br> float N2_ave(time, lev, lat, lon) ;<br> N2_ave:long_name = "" ;<br> N2_ave:standard_name = "" ;<br> N2_ave:units = "mol/mol" ;<br> N2_ave:submodel = "mecca" ;<br> N2_ave:index = 157 ;<br> N2_ave:medium = "AIR" ;<br> N2_ave:quantity = "AMOUNTFRACTION" ;<br> N2_ave:type = "SINGLE" ;<br> N2_ave:number_of_timelevels = -1 ;<br> N2_ave:charge = "UNDEFINED" ;<br> N2_ave:advect = "OFF" ;<br> N2_ave:convect = "OFF" ;<br> N2_ave:vdiff = "OFF" ;<br> N2_ave:drydep = "OFF" ;<br> N2_ave:sedi = "OFF" ;<br> N2_ave:scav = "OFF" ;<br> N2_ave:mix = "ON" ;<br> N2_ave:force_col = "OFF" ;<br> N2_ave:integrate = "ON" ;<br> N2_ave:timefilter = "ON" ;<br> N2_ave:force_init = "OFF" ;<br> N2_ave:aerosol_method = "MODAL" ;<br> N2_ave:aerosol_mode = "0" ;<br> N2_ave:aerosol_sol = "ON" ;<br> N2_ave:aerosol_hetice = "OFF" ;<br> N2_ave:hori_diff = "OFF" ;<br> N2_ave:relaxation = "FULL" ;<br> N2_ave:mmd_init = "OFF" ;<br> N2_ave:tag_reg_idt = "157" ;<br> N2_ave:tag_specific = "0" ;<br> N2_ave:initial\ type = "FILE" ;<br> N2_ave:lateral_bounds = "FILE" ;<br> N2_ave:damping = "ON" ;<br> N2_ave:grib\ table\ num = "-1" ;<br> N2_ave:grib\ param\ num = "-1" ;<br> N2_ave:mtskip = "OFF" ;<br> N2_ave:bot_bound_cond = "ZERO FLUX" ;<br> N2_ave:SPPT = "OFF" ;<br> N2_ave:blockphy = "OFF" ;<br> N2_ave:feedback = "ON" ;<br> N2_ave:molarmass = 28.02f ;<br> N2_ave:Henry_T0 = 0.000652f ;<br> N2_ave:Henry_Tdep = -9.99999f ;<br> N2_ave:Sechenov = 9.99999f ;<br> N2_ave:alpha_T0 = 0.1f ;<br> N2_ave:alpha_Tdep = 0.f ;<br> N2_ave:K_acid = 9.99999f ;<br> N2_ave:K_acid2 = 9.99999f ;<br> N2_ave:Vmol_bp = 9.99999f ;<br> N2_ave:psat = 9.99999f ;<br> N2_ave:psat_Tdep = 9.99999f ;<br> N2_ave:pss = -9.99999f ;<br> N2_ave:dryreac_sf = -9.99999f ;<br> N2_ave:aerosol_density = 1000.f ;<br> N2_ave:vini = 0.78f ;<br> N2_ave:casrn = "?" ;<br> N2_ave:aerosol_model = "" ;<br> N2_ave:REFERENCE_TO = "tracer_gp: N2" ;<br> N2_ave:coordinates = "lon lat" ;<br> N2_ave:cell_methods = "time: mean" ;<br> float NH3(time, lev, lat, lon) ;<br> NH3:long_name = "" ;<br> NH3:standard_name = "" ;<br> NH3:units = "mol/mol" ;<br> NH3:submodel = "mecca" ;<br> NH3:index = 47 ;<br> NH3:medium = "AIR" ;<br> NH3:quantity = "AMOUNTFRACTION" ;<br> NH3:type = "SINGLE" ;<br> NH3:number_of_timelevels = -1 ;<br> NH3:charge = "UNDEFINED" ;<br> NH3:advect = "ON" ;<br> NH3:convect = "ON" ;<br> NH3:vdiff = "ON" ;<br> NH3:drydep = "ON" ;<br> NH3:sedi = "OFF" ;<br> NH3:scav = "ON" ;<br> NH3:mix = "ON" ;<br> NH3:force_col = "OFF" ;<br> NH3:integrate = "ON" ;<br> NH3:timefilter = "ON" ;<br> NH3:force_init = "OFF" ;<br> NH3:aerosol_method = "MODAL" ;<br> NH3:aerosol_mode = "0" ;<br> NH3:aerosol_sol = "ON" ;<br> NH3:aerosol_hetice = "OFF" ;<br> NH3:hori_diff = "OFF" ;<br> NH3:relaxation = "FULL" ;<br> NH3:mmd_init = "OFF" ;<br> NH3:tag_reg_idt = "47" ;<br> NH3:tag_specific = "0" ;<br> NH3:initial\ type = "FILE" ;<br> NH3:lateral_bounds = "FILE" ;<br> NH3:damping = "ON" ;<br> NH3:grib\ table\ num = "-1" ;<br> NH3:grib\ param\ num = "-1" ;<br> NH3:mtskip = "OFF" ;<br> NH3:bot_bound_cond = "ZERO FLUX" ;<br> NH3:SPPT = "OFF" ;<br> NH3:blockphy = "OFF" ;<br> NH3:feedback = "ON" ;<br> NH3:molarmass = 17.04f ;<br> NH3:Henry_T0 = 60.2f ;<br> NH3:Henry_Tdep = 4160.f ;<br> NH3:Sechenov = 9.99999f ;<br> NH3:alpha_T0 = 0.05f ;<br> NH3:alpha_Tdep = 0.f ;<br> NH3:K_acid = -1.75e-05f ;<br> NH3:K_acid2 = 9.99999f ;<br> NH3:Vmol_bp = 9.99999f ;<br> NH3:psat = 9.99999f ;<br> NH3:psat_Tdep = 9.99999f ;<br> NH3:pss = 10200.f ;<br> NH3:dryreac_sf = 0.f ;<br> NH3:aerosol_density = 1000.f ;<br> NH3:vini = 0.f ;<br> NH3:casrn = "7664-41-7" ;<br> NH3:aerosol_model = "" ;<br> NH3:REFERENCE_TO = "tracer_gp: NH3" ;<br> NH3:coordinates = "lon lat" ;<br> NH3:cell_methods = "time: point" ;<br> float NH3_ave(time, lev, lat, lon) ;<br> NH3_ave:long_name = "" ;<br> NH3_ave:standard_name = "" ;<br> NH3_ave:units = "mol/mol" ;<br> NH3_ave:submodel = "mecca" ;<br> NH3_ave:index = 47 ;<br> NH3_ave:medium = "AIR" ;<br> NH3_ave:quantity = "AMOUNTFRACTION" ;<br> NH3_ave:type = "SINGLE" ;<br> NH3_ave:number_of_timelevels = -1 ;<br> NH3_ave:charge = "UNDEFINED" ;<br> NH3_ave:advect = "ON" ;<br> NH3_ave:convect = "ON" ;<br> NH3_ave:vdiff = "ON" ;<br> NH3_ave:drydep = "ON" ;<br> NH3_ave:sedi = "OFF" ;<br> NH3_ave:scav = "ON" ;<br> NH3_ave:mix = "ON" ;<br> NH3_ave:force_col = "OFF" ;<br> NH3_ave:integrate = "ON" ;<br> NH3_ave:timefilter = "ON" ;<br> NH3_ave:force_init = "OFF" ;<br> NH3_ave:aerosol_method = "MODAL" ;<br> NH3_ave:aerosol_mode = "0" ;<br> NH3_ave:aerosol_sol = "ON" ;<br> NH3_ave:aerosol_hetice = "OFF" ;<br> NH3_ave:hori_diff = "OFF" ;<br> NH3_ave:relaxation = "FULL" ;<br> NH3_ave:mmd_init = "OFF" ;<br> NH3_ave:tag_reg_idt = "47" ;<br> NH3_ave:tag_specific = "0" ;<br> NH3_ave:initial\ type = "FILE" ;<br> NH3_ave:lateral_bounds = "FILE" ;<br> NH3_ave:damping = "ON" ;<br> NH3_ave:grib\ table\ num = "-1" ;<br> NH3_ave:grib\ param\ num = "-1" ;<br> NH3_ave:mtskip = "OFF" ;<br> NH3_ave:bot_bound_cond = "ZERO FLUX" ;<br> NH3_ave:SPPT = "OFF" ;<br> NH3_ave:blockphy = "OFF" ;<br> NH3_ave:feedback = "ON" ;<br> NH3_ave:molarmass = 17.04f ;<br> NH3_ave:Henry_T0 = 60.2f ;<br> NH3_ave:Henry_Tdep = 4160.f ;<br> NH3_ave:Sechenov = 9.99999f ;<br> NH3_ave:alpha_T0 = 0.05f ;<br> NH3_ave:alpha_Tdep = 0.f ;<br> NH3_ave:K_acid = -1.75e-05f ;<br> NH3_ave:K_acid2 = 9.99999f ;<br> NH3_ave:Vmol_bp = 9.99999f ;<br> NH3_ave:psat = 9.99999f ;<br> NH3_ave:psat_Tdep = 9.99999f ;<br> NH3_ave:pss = 10200.f ;<br> NH3_ave:dryreac_sf = 0.f ;<br> NH3_ave:aerosol_density = 1000.f ;<br> NH3_ave:vini = 0.f ;<br> NH3_ave:casrn = "7664-41-7" ;<br> NH3_ave:aerosol_model = "" ;<br> NH3_ave:REFERENCE_TO = "tracer_gp: NH3" ;<br> NH3_ave:coordinates = "lon lat" ;<br> NH3_ave:cell_methods = "time: mean" ;<br> float N2O(time, lev, lat, lon) ;<br> N2O:long_name = "" ;<br> N2O:standard_name = "" ;<br> N2O:units = "mol/mol" ;<br> N2O:submodel = "mecca" ;<br> N2O:index = 65 ;<br> N2O:medium = "AIR" ;<br> N2O:quantity = "AMOUNTFRACTION" ;<br> N2O:type = "SINGLE" ;<br> N2O:number_of_timelevels = -1 ;<br> N2O:charge = "UNDEFINED" ;<br> N2O:advect = "ON" ;<br> N2O:convect = "ON" ;<br> N2O:vdiff = "ON" ;<br> N2O:drydep = "OFF" ;<br> N2O:sedi = "OFF" ;<br> N2O:scav = "OFF" ;<br> N2O:mix = "ON" ;<br> N2O:force_col = "OFF" ;<br> N2O:integrate = "ON" ;<br> N2O:timefilter = "ON" ;<br> N2O:force_init = "OFF" ;<br> N2O:aerosol_method = "MODAL" ;<br> N2O:aerosol_mode = "0" ;<br> N2O:aerosol_sol = "ON" ;<br> N2O:aerosol_hetice = "OFF" ;<br> N2O:hori_diff = "OFF" ;<br> N2O:relaxation = "FULL" ;<br> N2O:mmd_init = "OFF" ;<br> N2O:tag_reg_idt = "65" ;<br> N2O:tag_specific = "0" ;<br> N2O:initial\ type = "FILE" ;<br> N2O:lateral_bounds = "FILE" ;<br> N2O:damping = "ON" ;<br> N2O:grib\ table\ num = "-1" ;<br> N2O:grib\ param\ num = "-1" ;<br> N2O:mtskip = "OFF" ;<br> N2O:bot_bound_cond = "ZERO FLUX" ;<br> N2O:SPPT = "OFF" ;<br> N2O:blockphy = "OFF" ;<br> N2O:feedback = "ON" ;<br> N2O:molarmass = 44.02f ;<br> N2O:Henry_T0 = 0.0242f ;<br> N2O:Henry_Tdep = -9.99999f ;<br> N2O:Sechenov = 9.99999f ;<br> N2O:alpha_T0 = 0.1f ;<br> N2O:alpha_Tdep = 0.f ;<br> N2O:K_acid = 9.99999f ;<br> N2O:K_acid2 = 9.99999f ;<br> N2O:Vmol_bp = 9.99999f ;<br> N2O:psat = 9.99999f ;<br> N2O:psat_Tdep = 9.99999f ;<br> N2O:pss = -9.99999f ;<br> N2O:dryreac_sf = -9.99999f ;<br> N2O:aerosol_density = 1000.f ;<br> N2O:vini = 0.f ;<br> N2O:casrn = "10024-97-2" ;<br> N2O:aerosol_model = "" ;<br> N2O:REFERENCE_TO = "tracer_gp: N2O" ;<br> N2O:coordinates = "lon lat" ;<br> N2O:cell_methods = "time: point" ;<br> float N2O_ave(time, lev, lat, lon) ;<br> N2O_ave:long_name = "" ;<br> N2O_ave:standard_name = "" ;<br> N2O_ave:units = "mol/mol" ;<br> N2O_ave:submodel = "mecca" ;<br> N2O_ave:index = 65 ;<br> N2O_ave:medium = "AIR" ;<br> N2O_ave:quantity = "AMOUNTFRACTION" ;<br> N2O_ave:type = "SINGLE" ;<br> N2O_ave:number_of_timelevels = -1 ;<br> N2O_ave:charge = "UNDEFINED" ;<br> N2O_ave:advect = "ON" ;<br> N2O_ave:convect = "ON" ;<br> N2O_ave:vdiff = "ON" ;<br> N2O_ave:drydep = "OFF" ;<br> N2O_ave:sedi = "OFF" ;<br> N2O_ave:scav = "OFF" ;<br> N2O_ave:mix = "ON" ;<br> N2O_ave:force_col = "OFF" ;<br> N2O_ave:integrate = "ON" ;<br> N2O_ave:timefilter = "ON" ;<br> N2O_ave:force_init = "OFF" ;<br> N2O_ave:aerosol_method = "MODAL" ;<br> N2O_ave:aerosol_mode = "0" ;<br> N2O_ave:aerosol_sol = "ON" ;<br> N2O_ave:aerosol_hetice = "OFF" ;<br> N2O_ave:hori_diff = "OFF" ;<br> N2O_ave:relaxation = "FULL" ;<br> N2O_ave:mmd_init = "OFF" ;<br> N2O_ave:tag_reg_idt = "65" ;<br> N2O_ave:tag_specific = "0" ;<br> N2O_ave:initial\ type = "FILE" ;<br> N2O_ave:lateral_bounds = "FILE" ;<br> N2O_ave:damping = "ON" ;<br> N2O_ave:grib\ table\ num = "-1" ;<br> N2O_ave:grib\ param\ num = "-1" ;<br> N2O_ave:mtskip = "OFF" ;<br> N2O_ave:bot_bound_cond = "ZERO FLUX" ;<br> N2O_ave:SPPT = "OFF" ;<br> N2O_ave:blockphy = "OFF" ;<br> N2O_ave:feedback = "ON" ;<br> N2O_ave:molarmass = 44.02f ;<br> N2O_ave:Henry_T0 = 0.0242f ;<br> N2O_ave:Henry_Tdep = -9.99999f ;<br> N2O_ave:Sechenov = 9.99999f ;<br> N2O_ave:alpha_T0 = 0.1f ;<br> N2O_ave:alpha_Tdep = 0.f ;<br> N2O_ave:K_acid = 9.99999f ;<br> N2O_ave:K_acid2 = 9.99999f ;<br> N2O_ave:Vmol_bp = 9.99999f ;<br> N2O_ave:psat = 9.99999f ;<br> N2O_ave:psat_Tdep = 9.99999f ;<br> N2O_ave:pss = -9.99999f ;<br> N2O_ave:dryreac_sf = -9.99999f ;<br> N2O_ave:aerosol_density = 1000.f ;<br> N2O_ave:vini = 0.f ;<br> N2O_ave:casrn = "10024-97-2" ;<br> N2O_ave:aerosol_model = "" ;<br> N2O_ave:REFERENCE_TO = "tracer_gp: N2O" ;<br> N2O_ave:coordinates = "lon lat" ;<br> N2O_ave:cell_methods = "time: mean" ;<br> float NO(time, lev, lat, lon) ;<br> NO:long_name = "" ;<br> NO:standard_name = "" ;<br> NO:units = "mol/mol" ;<br> NO:submodel = "mecca" ;<br> NO:index = 143 ;<br> NO:medium = "AIR" ;<br> NO:quantity = "AMOUNTFRACTION" ;<br> NO:type = "SINGLE" ;<br> NO:number_of_timelevels = -1 ;<br> NO:charge = "UNDEFINED" ;<br> NO:advect = "ON" ;<br> NO:convect = "ON" ;<br> NO:vdiff = "ON" ;<br> NO:drydep = "ON" ;<br> NO:sedi = "OFF" ;<br> NO:scav = "ON" ;<br> NO:mix = "ON" ;<br> NO:force_col = "OFF" ;<br> NO:integrate = "ON" ;<br> NO:timefilter = "ON" ;<br> NO:force_init = "OFF" ;<br> NO:aerosol_method = "MODAL" ;<br> NO:aerosol_mode = "0" ;<br> NO:aerosol_sol = "ON" ;<br> NO:aerosol_hetice = "OFF" ;<br> NO:hori_diff = "OFF" ;<br> NO:relaxation = "FULL" ;<br> NO:mmd_init = "OFF" ;<br> NO:tag_reg_idt = "143" ;<br> NO:tag_specific = "0" ;<br> NO:initial\ type = "FILE" ;<br> NO:lateral_bounds = "FILE" ;<br> NO:damping = "ON" ;<br> NO:grib\ table\ num = "-1" ;<br> NO:grib\ param\ num = "-1" ;<br> NO:mtskip = "OFF" ;<br> NO:bot_bound_cond = "ZERO FLUX" ;<br> NO:SPPT = "OFF" ;<br> NO:blockphy = "OFF" ;<br> NO:feedback = "ON" ;<br> NO:molarmass = 30.01f ;<br> NO:Henry_T0 = 0.00192f ;<br> NO:Henry_Tdep = 1480.f ;<br> NO:Sechenov = 9.99999f ;<br> NO:alpha_T0 = 5.e-05f ;<br> NO:alpha_Tdep = 0.f ;<br> NO:K_acid = 9.99999f ;<br> NO:K_acid2 = 9.99999f ;<br> NO:Vmol_bp = 9.99999f ;<br> NO:psat = 9.99999f ;<br> NO:psat_Tdep = 9.99999f ;<br> NO:pss = 0.002f ;<br> NO:dryreac_sf = 1.f ;<br> NO:aerosol_density = 1000.f ;<br> NO:vini = 0.f ;<br> NO:casrn = "10102-43-9" ;<br> NO:aerosol_model = "" ;<br> NO:REFERENCE_TO = "tracer_gp: NO" ;<br> NO:coordinates = "lon lat" ;<br> NO:cell_methods = "time: point" ;<br> float NO_ave(time, lev, lat, lon) ;<br> NO_ave:long_name = "" ;<br> NO_ave:standard_name = "" ;<br> NO_ave:units = "mol/mol" ;<br> NO_ave:submodel = "mecca" ;<br> NO_ave:index = 143 ;<br> NO_ave:medium = "AIR" ;<br> NO_ave:quantity = "AMOUNTFRACTION" ;<br> NO_ave:type = "SINGLE" ;<br> NO_ave:number_of_timelevels = -1 ;<br> NO_ave:charge = "UNDEFINED" ;<br> NO_ave:advect = "ON" ;<br> NO_ave:convect = "ON" ;<br> NO_ave:vdiff = "ON" ;<br> NO_ave:drydep = "ON" ;<br> NO_ave:sedi = "OFF" ;<br> NO_ave:scav = "ON" ;<br> NO_ave:mix = "ON" ;<br> NO_ave:force_col = "OFF" ;<br> NO_ave:integrate = "ON" ;<br> NO_ave:timefilter = "ON" ;<br> NO_ave:force_init = "OFF" ;<br> NO_ave:aerosol_method = "MODAL" ;<br> NO_ave:aerosol_mode = "0" ;<br> NO_ave:aerosol_sol = "ON" ;<br> NO_ave:aerosol_hetice = "OFF" ;<br> NO_ave:hori_diff = "OFF" ;<br> NO_ave:relaxation = "FULL" ;<br> NO_ave:mmd_init = "OFF" ;<br> NO_ave:tag_reg_idt = "143" ;<br> NO_ave:tag_specific = "0" ;<br> NO_ave:initial\ type = "FILE" ;<br> NO_ave:lateral_bounds = "FILE" ;<br> NO_ave:damping = "ON" ;<br> NO_ave:grib\ table\ num = "-1" ;<br> NO_ave:grib\ param\ num = "-1" ;<br> NO_ave:mtskip = "OFF" ;<br> NO_ave:bot_bound_cond = "ZERO FLUX" ;<br> NO_ave:SPPT = "OFF" ;<br> NO_ave:blockphy = "OFF" ;<br> NO_ave:feedback = "ON" ;<br> NO_ave:molarmass = 30.01f ;<br> NO_ave:Henry_T0 = 0.00192f ;<br> NO_ave:Henry_Tdep = 1480.f ;<br> NO_ave:Sechenov = 9.99999f ;<br> NO_ave:alpha_T0 = 5.e-05f ;<br> NO_ave:alpha_Tdep = 0.f ;<br> NO_ave:K_acid = 9.99999f ;<br> NO_ave:K_acid2 = 9.99999f ;<br> NO_ave:Vmol_bp = 9.99999f ;<br> NO_ave:psat = 9.99999f ;<br> NO_ave:psat_Tdep = 9.99999f ;<br> NO_ave:pss = 0.002f ;<br> NO_ave:dryreac_sf = 1.f ;<br> NO_ave:aerosol_density = 1000.f ;<br> NO_ave:vini = 0.f ;<br> NO_ave:casrn = "10102-43-9" ;<br> NO_ave:aerosol_model = "" ;<br> NO_ave:REFERENCE_TO = "tracer_gp: NO" ;<br> NO_ave:coordinates = "lon lat" ;<br> NO_ave:cell_methods = "time: mean" ;<br> float NO2(time, lev, lat, lon) ;<br> NO2:long_name = "" ;<br> NO2:standard_name = "" ;<br> NO2:units = "mol/mol" ;<br> NO2:submodel = "mecca" ;<br> NO2:index = 147 ;<br> NO2:medium = "AIR" ;<br> NO2:quantity = "AMOUNTFRACTION" ;<br> NO2:type = "SINGLE" ;<br> NO2:number_of_timelevels = -1 ;<br> NO2:charge = "UNDEFINED" ;<br> NO2:advect = "ON" ;<br> NO2:convect = "ON" ;<br> NO2:vdiff = "ON" ;<br> NO2:drydep = "ON" ;<br> NO2:sedi = "OFF" ;<br> NO2:scav = "ON" ;<br> NO2:mix = "ON" ;<br> NO2:force_col = "OFF" ;<br> NO2:integrate = "ON" ;<br> NO2:timefilter = "ON" ;<br> NO2:force_init = "OFF" ;<br> NO2:aerosol_method = "MODAL" ;<br> NO2:aerosol_mode = "0" ;<br> NO2:aerosol_sol = "ON" ;<br> NO2:aerosol_hetice = "OFF" ;<br> NO2:hori_diff = "OFF" ;<br> NO2:relaxation = "FULL" ;<br> NO2:mmd_init = "OFF" ;<br> NO2:tag_reg_idt = "147" ;<br> NO2:tag_specific = "0" ;<br> NO2:initial\ type = "FILE" ;<br> NO2:lateral_bounds = "FILE" ;<br> NO2:damping = "ON" ;<br> NO2:grib\ table\ num = "-1" ;<br> NO2:grib\ param\ num = "-1" ;<br> NO2:mtskip = "OFF" ;<br> NO2:bot_bound_cond = "ZERO FLUX" ;<br> NO2:SPPT = "OFF" ;<br> NO2:blockphy = "OFF" ;<br> NO2:feedback = "ON" ;<br> NO2:molarmass = 46.01f ;<br> NO2:Henry_T0 = 0.012f ;<br> NO2:Henry_Tdep = 2360.f ;<br> NO2:Sechenov = 9.99999f ;<br> NO2:alpha_T0 = 0.0015f ;<br> NO2:alpha_Tdep = 0.f ;<br> NO2:K_acid = 9.99999f ;<br> NO2:K_acid2 = 9.99999f ;<br> NO2:Vmol_bp = 9.99999f ;<br> NO2:psat = 9.99999f ;<br> NO2:psat_Tdep = 9.99999f ;<br> NO2:pss = 0.01f ;<br> NO2:dryreac_sf = 1.f ;<br> NO2:aerosol_density = 1000.f ;<br> NO2:vini = 0.f ;<br> NO2:casrn = "10102-44-0" ;<br> NO2:aerosol_model = "" ;<br> NO2:REFERENCE_TO = "tracer_gp: NO2" ;<br> NO2:coordinates = "lon lat" ;<br> NO2:cell_methods = "time: point" ;<br> float NO2_ave(time, lev, lat, lon) ;<br> NO2_ave:long_name = "" ;<br> NO2_ave:standard_name = "" ;<br> NO2_ave:units = "mol/mol" ;<br> NO2_ave:submodel = "mecca" ;<br> NO2_ave:index = 147 ;<br> NO2_ave:medium = "AIR" ;<br> NO2_ave:quantity = "AMOUNTFRACTION" ;<br> NO2_ave:type = "SINGLE" ;<br> NO2_ave:number_of_timelevels = -1 ;<br> NO2_ave:charge = "UNDEFINED" ;<br> NO2_ave:advect = "ON" ;<br> NO2_ave:convect = "ON" ;<br> NO2_ave:vdiff = "ON" ;<br> NO2_ave:drydep = "ON" ;<br> NO2_ave:sedi = "OFF" ;<br> NO2_ave:scav = "ON" ;<br> NO2_ave:mix = "ON" ;<br> NO2_ave:force_col = "OFF" ;<br> NO2_ave:integrate = "ON" ;<br> NO2_ave:timefilter = "ON" ;<br> NO2_ave:force_init = "OFF" ;<br> NO2_ave:aerosol_method = "MODAL" ;<br> NO2_ave:aerosol_mode = "0" ;<br> NO2_ave:aerosol_sol = "ON" ;<br> NO2_ave:aerosol_hetice = "OFF" ;<br> NO2_ave:hori_diff = "OFF" ;<br> NO2_ave:relaxation = "FULL" ;<br> NO2_ave:mmd_init = "OFF" ;<br> NO2_ave:tag_reg_idt = "147" ;<br> NO2_ave:tag_specific = "0" ;<br> NO2_ave:initial\ type = "FILE" ;<br> NO2_ave:lateral_bounds = "FILE" ;<br> NO2_ave:damping = "ON" ;<br> NO2_ave:grib\ table\ num = "-1" ;<br> NO2_ave:grib\ param\ num = "-1" ;<br> NO2_ave:mtskip = "OFF" ;<br> NO2_ave:bot_bound_cond = "ZERO FLUX" ;<br> NO2_ave:SPPT = "OFF" ;<br> NO2_ave:blockphy = "OFF" ;<br> NO2_ave:feedback = "ON" ;<br> NO2_ave:molarmass = 46.01f ;<br> NO2_ave:Henry_T0 = 0.012f ;<br> NO2_ave:Henry_Tdep = 2360.f ;<br> NO2_ave:Sechenov = 9.99999f ;<br> NO2_ave:alpha_T0 = 0.0015f ;<br> NO2_ave:alpha_Tdep = 0.f ;<br> NO2_ave:K_acid = 9.99999f ;<br> NO2_ave:K_acid2 = 9.99999f ;<br> NO2_ave:Vmol_bp = 9.99999f ;<br> NO2_ave:psat = 9.99999f ;<br> NO2_ave:psat_Tdep = 9.99999f ;<br> NO2_ave:pss = 0.01f ;<br> NO2_ave:dryreac_sf = 1.f ;<br> NO2_ave:aerosol_density = 1000.f ;<br> NO2_ave:vini = 0.f ;<br> NO2_ave:casrn = "10102-44-0" ;<br> NO2_ave:aerosol_model = "" ;<br> NO2_ave:REFERENCE_TO = "tracer_gp: NO2" ;<br> NO2_ave:coordinates = "lon lat" ;<br> NO2_ave:cell_methods = "time: mean" ;<br> float NO3(time, lev, lat, lon) ;<br> NO3:long_name = "" ;<br> NO3:standard_name = "" ;<br> NO3:units = "mol/mol" ;<br> NO3:submodel = "mecca" ;<br> NO3:index = 146 ;<br> NO3:medium = "AIR" ;<br> NO3:quantity = "AMOUNTFRACTION" ;<br> NO3:type = "SINGLE" ;<br> NO3:number_of_timelevels = -1 ;<br> NO3:charge = "UNDEFINED" ;<br> NO3:advect = "ON" ;<br> NO3:convect = "ON" ;<br> NO3:vdiff = "ON" ;<br> NO3:drydep = "ON" ;<br> NO3:sedi = "OFF" ;<br> NO3:scav = "ON" ;<br> NO3:mix = "ON" ;<br> NO3:force_col = "OFF" ;<br> NO3:integrate = "ON" ;<br> NO3:timefilter = "ON" ;<br> NO3:force_init = "OFF" ;<br> NO3:aerosol_method = "MODAL" ;<br> NO3:aerosol_mode = "0" ;<br> NO3:aerosol_sol = "ON" ;<br> NO3:aerosol_hetice = "OFF" ;<br> NO3:hori_diff = "OFF" ;<br> NO3:relaxation = "FULL" ;<br> NO3:mmd_init = "OFF" ;<br> NO3:tag_reg_idt = "146" ;<br> NO3:tag_specific = "0" ;<br> NO3:initial\ type = "FILE" ;<br> NO3:lateral_bounds = "FILE" ;<br> NO3:damping = "ON" ;<br> NO3:grib\ table\ num = "-1" ;<br> NO3:grib\ param\ num = "-1" ;<br> NO3:mtskip = "OFF" ;<br> NO3:bot_bound_cond = "ZERO FLUX" ;<br> NO3:SPPT = "OFF" ;<br> NO3:blockphy = "OFF" ;<br> NO3:feedback = "ON" ;<br> NO3:molarmass = 62.01f ;<br> NO3:Henry_T0 = 0.038f ;<br> NO3:Henry_Tdep = 2000.f ;<br> NO3:Sechenov = 9.99999f ;<br> NO3:alpha_T0 = 0.04f ;<br> NO3:alpha_Tdep = 0.f ;<br> NO3:K_acid = 9.99999f ;<br> NO3:K_acid2 = 9.99999f ;<br> NO3:Vmol_bp = 9.99999f ;<br> NO3:psat = 9.99999f ;<br> NO3:psat_Tdep = 9.99999f ;<br> NO3:pss = 1.8f ;<br> NO3:dryreac_sf = 1.f ;<br> NO3:aerosol_density = 1000.f ;<br> NO3:vini = 0.f ;<br> NO3:casrn = "12033-49-7" ;<br> NO3:aerosol_model = "" ;<br> NO3:REFERENCE_TO = "tracer_gp: NO3" ;<br> NO3:coordinates = "lon lat" ;<br> NO3:cell_methods = "time: point" ;<br> float NO3_ave(time, lev, lat, lon) ;<br> NO3_ave:long_name = "" ;<br> NO3_ave:standard_name = "" ;<br> NO3_ave:units = "mol/mol" ;<br> NO3_ave:submodel = "mecca" ;<br> NO3_ave:index = 146 ;<br> NO3_ave:medium = "AIR" ;<br> NO3_ave:quantity = "AMOUNTFRACTION" ;<br> NO3_ave:type = "SINGLE" ;<br> NO3_ave:number_of_timelevels = -1 ;<br> NO3_ave:charge = "UNDEFINED" ;<br> NO3_ave:advect = "ON" ;<br> NO3_ave:convect = "ON" ;<br> NO3_ave:vdiff = "ON" ;<br> NO3_ave:drydep = "ON" ;<br> NO3_ave:sedi = "OFF" ;<br> NO3_ave:scav = "ON" ;<br> NO3_ave:mix = "ON" ;<br> NO3_ave:force_col = "OFF" ;<br> NO3_ave:integrate = "ON" ;<br> NO3_ave:timefilter = "ON" ;<br> NO3_ave:force_init = "OFF" ;<br> NO3_ave:aerosol_method = "MODAL" ;<br> NO3_ave:aerosol_mode = "0" ;<br> NO3_ave:aerosol_sol = "ON" ;<br> NO3_ave:aerosol_hetice = "OFF" ;<br> NO3_ave:hori_diff = "OFF" ;<br> NO3_ave:relaxation = "FULL" ;<br> NO3_ave:mmd_init = "OFF" ;<br> NO3_ave:tag_reg_idt = "146" ;<br> NO3_ave:tag_specific = "0" ;<br> NO3_ave:initial\ type = "FILE" ;<br> NO3_ave:lateral_bounds = "FILE" ;<br> NO3_ave:damping = "ON" ;<br> NO3_ave:grib\ table\ num = "-1" ;<br> NO3_ave:grib\ param\ num = "-1" ;<br> NO3_ave:mtskip = "OFF" ;<br> NO3_ave:bot_bound_cond = "ZERO FLUX" ;<br> NO3_ave:SPPT = "OFF" ;<br> NO3_ave:blockphy = "OFF" ;<br> NO3_ave:feedback = "ON" ;<br> NO3_ave:molarmass = 62.01f ;<br> NO3_ave:Henry_T0 = 0.038f ;<br> NO3_ave:Henry_Tdep = 2000.f ;<br> NO3_ave:Sechenov = 9.99999f ;<br> NO3_ave:alpha_T0 = 0.04f ;<br> NO3_ave:alpha_Tdep = 0.f ;<br> NO3_ave:K_acid = 9.99999f ;<br> NO3_ave:K_acid2 = 9.99999f ;<br> NO3_ave:Vmol_bp = 9.99999f ;<br> NO3_ave:psat = 9.99999f ;<br> NO3_ave:psat_Tdep = 9.99999f ;<br> NO3_ave:pss = 1.8f ;<br> NO3_ave:dryreac_sf = 1.f ;<br> NO3_ave:aerosol_density = 1000.f ;<br> NO3_ave:vini = 0.f ;<br> NO3_ave:casrn = "12033-49-7" ;<br> NO3_ave:aerosol_model = "" ;<br> NO3_ave:REFERENCE_TO = "tracer_gp: NO3" ;<br> NO3_ave:coordinates = "lon lat" ;<br> NO3_ave:cell_methods = "time: mean" ;<br> float N2O5(time, lev, lat, lon) ;<br> N2O5:long_name = "" ;<br> N2O5:standard_name = "" ;<br> N2O5:units = "mol/mol" ;<br> N2O5:submodel = "mecca" ;<br> N2O5:index = 101 ;<br> N2O5:medium = "AIR" ;<br> N2O5:quantity = "AMOUNTFRACTION" ;<br> N2O5:type = "SINGLE" ;<br> N2O5:number_of_timelevels = -1 ;<br> N2O5:charge = "UNDEFINED" ;<br> N2O5:advect = "ON" ;<br> N2O5:convect = "ON" ;<br> N2O5:vdiff = "ON" ;<br> N2O5:drydep = "ON" ;<br> N2O5:sedi = "OFF" ;<br> N2O5:scav = "ON" ;<br> N2O5:mix = "ON" ;<br> N2O5:force_col = "OFF" ;<br> N2O5:integrate = "ON" ;<br> N2O5:timefilter = "ON" ;<br> N2O5:force_init = "OFF" ;<br> N2O5:aerosol_method = "MODAL" ;<br> N2O5:aerosol_mode = "0" ;<br> N2O5:aerosol_sol = "ON" ;<br> N2O5:aerosol_hetice = "OFF" ;<br> N2O5:hori_diff = "OFF" ;<br> N2O5:relaxation = "FULL" ;<br> N2O5:mmd_init = "OFF" ;<br> N2O5:tag_reg_idt = "101" ;<br> N2O5:tag_specific = "0" ;<br> N2O5:initial\ type = "FILE" ;<br> N2O5:lateral_bounds = "FILE" ;<br> N2O5:damping = "ON" ;<br> N2O5:grib\ table\ num = "-1" ;<br> N2O5:grib\ param\ num = "-1" ;<br> N2O5:mtskip = "OFF" ;<br> N2O5:bot_bound_cond = "ZERO FLUX" ;<br> N2O5:SPPT = "OFF" ;<br> N2O5:blockphy = "OFF" ;<br> N2O5:feedback = "ON" ;<br> N2O5:molarmass = 108.02f ;<br> N2O5:Henry_T0 = 0.088f ;<br> N2O5:Henry_Tdep = 3600.f ;<br> N2O5:Sechenov = 9.99999f ;<br> N2O5:alpha_T0 = 0.4f ;<br> N2O5:alpha_Tdep = 0.f ;<br> N2O5:K_acid = 9.99999f ;<br> N2O5:K_acid2 = 9.99999f ;<br> N2O5:Vmol_bp = 9.99999f ;<br> N2O5:psat = 9.99999f ;<br> N2O5:psat_Tdep = 9.99999f ;<br> N2O5:pss = Infinityf ;<br> N2O5:dryreac_sf = 1.f ;<br> N2O5:aerosol_density = 1000.f ;<br> N2O5:vini = 0.f ;<br> N2O5:casrn = "10102-03-1" ;<br> N2O5:aerosol_model = "" ;<br> N2O5:REFERENCE_TO = "tracer_gp: N2O5" ;<br> N2O5:coordinates = "lon lat" ;<br> N2O5:cell_methods = "time: point" ;<br> float N2O5_ave(time, lev, lat, lon) ;<br> N2O5_ave:long_name = "" ;<br> N2O5_ave:standard_name = "" ;<br> N2O5_ave:units = "mol/mol" ;<br> N2O5_ave:submodel = "mecca" ;<br> N2O5_ave:index = 101 ;<br> N2O5_ave:medium = "AIR" ;<br> N2O5_ave:quantity = "AMOUNTFRACTION" ;<br> N2O5_ave:type = "SINGLE" ;<br> N2O5_ave:number_of_timelevels = -1 ;<br> N2O5_ave:charge = "UNDEFINED" ;<br> N2O5_ave:advect = "ON" ;<br> N2O5_ave:convect = "ON" ;<br> N2O5_ave:vdiff = "ON" ;<br> N2O5_ave:drydep = "ON" ;<br> N2O5_ave:sedi = "OFF" ;<br> N2O5_ave:scav = "ON" ;<br> N2O5_ave:mix = "ON" ;<br> N2O5_ave:force_col = "OFF" ;<br> N2O5_ave:integrate = "ON" ;<br> N2O5_ave:timefilter = "ON" ;<br> N2O5_ave:force_init = "OFF" ;<br> N2O5_ave:aerosol_method = "MODAL" ;<br> N2O5_ave:aerosol_mode = "0" ;<br> N2O5_ave:aerosol_sol = "ON" ;<br> N2O5_ave:aerosol_hetice = "OFF" ;<br> N2O5_ave:hori_diff = "OFF" ;<br> N2O5_ave:relaxation = "FULL" ;<br> N2O5_ave:mmd_init = "OFF" ;<br> N2O5_ave:tag_reg_idt = "101" ;<br> N2O5_ave:tag_specific = "0" ;<br> N2O5_ave:initial\ type = "FILE" ;<br> N2O5_ave:lateral_bounds = "FILE" ;<br> N2O5_ave:damping = "ON" ;<br> N2O5_ave:grib\ table\ num = "-1" ;<br> N2O5_ave:grib\ param\ num = "-1" ;<br> N2O5_ave:mtskip = "OFF" ;<br> N2O5_ave:bot_bound_cond = "ZERO FLUX" ;<br> N2O5_ave:SPPT = "OFF" ;<br> N2O5_ave:blockphy = "OFF" ;<br> N2O5_ave:feedback = "ON" ;<br> N2O5_ave:molarmass = 108.02f ;<br> N2O5_ave:Henry_T0 = 0.088f ;<br> N2O5_ave:Henry_Tdep = 3600.f ;<br> N2O5_ave:Sechenov = 9.99999f ;<br> N2O5_ave:alpha_T0 = 0.4f ;<br> N2O5_ave:alpha_Tdep = 0.f ;<br> N2O5_ave:K_acid = 9.99999f ;<br> N2O5_ave:K_acid2 = 9.99999f ;<br> N2O5_ave:Vmol_bp = 9.99999f ;<br> N2O5_ave:psat = 9.99999f ;<br> N2O5_ave:psat_Tdep = 9.99999f ;<br> N2O5_ave:pss = Infinityf ;<br> N2O5_ave:dryreac_sf = 1.f ;<br> N2O5_ave:aerosol_density = 1000.f ;<br> N2O5_ave:vini = 0.f ;<br> N2O5_ave:casrn = "10102-03-1" ;<br> N2O5_ave:aerosol_model = "" ;<br> N2O5_ave:REFERENCE_TO = "tracer_gp: N2O5" ;<br> N2O5_ave:coordinates = "lon lat" ;<br> N2O5_ave:cell_methods = "time: mean" ;<br> float NH2(time, lev, lat, lon) ;<br> NH2:long_name = "" ;<br> NH2:standard_name = "" ;<br> NH2:units = "mol/mol" ;<br> NH2:submodel = "mecca" ;<br> NH2:index = 109 ;<br> NH2:medium = "AIR" ;<br> NH2:quantity = "AMOUNTFRACTION" ;<br> NH2:type = "SINGLE" ;<br> NH2:number_of_timelevels = -1 ;<br> NH2:charge = "UNDEFINED" ;<br> NH2:advect = "ON" ;<br> NH2:convect = "ON" ;<br> NH2:vdiff = "ON" ;<br> NH2:drydep = "OFF" ;<br> NH2:sedi = "OFF" ;<br> NH2:scav = "ON" ;<br> NH2:mix = "ON" ;<br> NH2:force_col = "OFF" ;<br> NH2:integrate = "ON" ;<br> NH2:timefilter = "ON" ;<br> NH2:force_init = "OFF" ;<br> NH2:aerosol_method = "MODAL" ;<br> NH2:aerosol_mode = "0" ;<br> NH2:aerosol_sol = "ON" ;<br> NH2:aerosol_hetice = "OFF" ;<br> NH2:hori_diff = "OFF" ;<br> NH2:relaxation = "FULL" ;<br> NH2:mmd_init = "OFF" ;<br> NH2:tag_reg_idt = "109" ;<br> NH2:tag_specific = "0" ;<br> NH2:initial\ type = "FILE" ;<br> NH2:lateral_bounds = "FILE" ;<br> NH2:damping = "ON" ;<br> NH2:grib\ table\ num = "-1" ;<br> NH2:grib\ param\ num = "-1" ;<br> NH2:mtskip = "OFF" ;<br> NH2:bot_bound_cond = "ZERO FLUX" ;<br> NH2:SPPT = "OFF" ;<br> NH2:blockphy = "OFF" ;<br> NH2:feedback = "ON" ;<br> NH2:molarmass = 16.03f ;<br> NH2:Henry_T0 = -9.99999f ;<br> NH2:Henry_Tdep = -9.99999f ;<br> NH2:Sechenov = 9.99999f ;<br> NH2:alpha_T0 = 0.1f ;<br> NH2:alpha_Tdep = 0.f ;<br> NH2:K_acid = 9.99999f ;<br> NH2:K_acid2 = 9.99999f ;<br> NH2:Vmol_bp = 9.99999f ;<br> NH2:psat = 9.99999f ;<br> NH2:psat_Tdep = 9.99999f ;<br> NH2:pss = -9.99999f ;<br> NH2:dryreac_sf = 0.f ;<br> NH2:aerosol_density = 1000.f ;<br> NH2:vini = 0.f ;<br> NH2:casrn = "17655-31-1" ;<br> NH2:aerosol_model = "" ;<br> NH2:REFERENCE_TO = "tracer_gp: NH2" ;<br> NH2:coordinates = "lon lat" ;<br> NH2:cell_methods = "time: point" ;<br> float NH2_ave(time, lev, lat, lon) ;<br> NH2_ave:long_name = "" ;<br> NH2_ave:standard_name = "" ;<br> NH2_ave:units = "mol/mol" ;<br> NH2_ave:submodel = "mecca" ;<br> NH2_ave:index = 109 ;<br> NH2_ave:medium = "AIR" ;<br> NH2_ave:quantity = "AMOUNTFRACTION" ;<br> NH2_ave:type = "SINGLE" ;<br> NH2_ave:number_of_timelevels = -1 ;<br> NH2_ave:charge = "UNDEFINED" ;<br> NH2_ave:advect = "ON" ;<br> NH2_ave:convect = "ON" ;<br> NH2_ave:vdiff = "ON" ;<br> NH2_ave:drydep = "OFF" ;<br> NH2_ave:sedi = "OFF" ;<br> NH2_ave:scav = "ON" ;<br> NH2_ave:mix = "ON" ;<br> NH2_ave:force_col = "OFF" ;<br> NH2_ave:integrate = "ON" ;<br> NH2_ave:timefilter = "ON" ;<br> NH2_ave:force_init = "OFF" ;<br> NH2_ave:aerosol_method = "MODAL" ;<br> NH2_ave:aerosol_mode = "0" ;<br> NH2_ave:aerosol_sol = "ON" ;<br> NH2_ave:aerosol_hetice = "OFF" ;<br> NH2_ave:hori_diff = "OFF" ;<br> NH2_ave:relaxation = "FULL" ;<br> NH2_ave:mmd_init = "OFF" ;<br> NH2_ave:tag_reg_idt = "109" ;<br> NH2_ave:tag_specific = "0" ;<br> NH2_ave:initial\ type = "FILE" ;<br> NH2_ave:lateral_bounds = "FILE" ;<br> NH2_ave:damping = "ON" ;<br> NH2_ave:grib\ table\ num = "-1" ;<br> NH2_ave:grib\ param\ num = "-1" ;<br> NH2_ave:mtskip = "OFF" ;<br> NH2_ave:bot_bound_cond = "ZERO FLUX" ;<br> NH2_ave:SPPT = "OFF" ;<br> NH2_ave:blockphy = "OFF" ;<br> NH2_ave:feedback = "ON" ;<br> NH2_ave:molarmass = 16.03f ;<br> NH2_ave:Henry_T0 = -9.99999f ;<br> NH2_ave:Henry_Tdep = -9.99999f ;<br> NH2_ave:Sechenov = 9.99999f ;<br> NH2_ave:alpha_T0 = 0.1f ;<br> NH2_ave:alpha_Tdep = 0.f ;<br> NH2_ave:K_acid = 9.99999f ;<br> NH2_ave:K_acid2 = 9.99999f ;<br> NH2_ave:Vmol_bp = 9.99999f ;<br> NH2_ave:psat = 9.99999f ;<br> NH2_ave:psat_Tdep = 9.99999f ;<br> NH2_ave:pss = -9.99999f ;<br> NH2_ave:dryreac_sf = 0.f ;<br> NH2_ave:aerosol_density = 1000.f ;<br> NH2_ave:vini = 0.f ;<br> NH2_ave:casrn = "17655-31-1" ;<br> NH2_ave:aerosol_model = "" ;<br> NH2_ave:REFERENCE_TO = "tracer_gp: NH2" ;<br> NH2_ave:coordinates = "lon lat" ;<br> NH2_ave:cell_methods = "time: mean" ;<br> float HNO3(time, lev, lat, lon) ;<br> HNO3:long_name = "" ;<br> HNO3:standard_name = "" ;<br> HNO3:units = "mol/mol" ;<br> HNO3:submodel = "mecca" ;<br> HNO3:index = 118 ;<br> HNO3:medium = "AIR" ;<br> HNO3:quantity = "AMOUNTFRACTION" ;<br> HNO3:type = "SINGLE" ;<br> HNO3:number_of_timelevels = -1 ;<br> HNO3:charge = "UNDEFINED" ;<br> HNO3:advect = "ON" ;<br> HNO3:convect = "ON" ;<br> HNO3:vdiff = "ON" ;<br> HNO3:drydep = "ON" ;<br> HNO3:sedi = "OFF" ;<br> HNO3:scav = "ON" ;<br> HNO3:mix = "ON" ;<br> HNO3:force_col = "OFF" ;<br> HNO3:integrate = "ON" ;<br> HNO3:timefilter = "ON" ;<br> HNO3:force_init = "OFF" ;<br> HNO3:aerosol_method = "MODAL" ;<br> HNO3:aerosol_mode = "0" ;<br> HNO3:aerosol_sol = "ON" ;<br> HNO3:aerosol_hetice = "OFF" ;<br> HNO3:hori_diff = "OFF" ;<br> HNO3:relaxation = "FULL" ;<br> HNO3:mmd_init = "OFF" ;<br> HNO3:tag_reg_idt = "118" ;<br> HNO3:tag_specific = "0" ;<br> HNO3:initial\ type = "FILE" ;<br> HNO3:lateral_bounds = "FILE" ;<br> HNO3:damping = "ON" ;<br> HNO3:grib\ table\ num = "-1" ;<br> HNO3:grib\ param\ num = "-1" ;<br> HNO3:mtskip = "OFF" ;<br> HNO3:bot_bound_cond = "ZERO FLUX" ;<br> HNO3:SPPT = "OFF" ;<br> HNO3:blockphy = "OFF" ;<br> HNO3:feedback = "ON" ;<br> HNO3:molarmass = 63.02f ;<br> HNO3:Henry_T0 = 163333.3f ;<br> HNO3:Henry_Tdep = 8694.f ;<br> HNO3:Sechenov = 9.99999f ;<br> HNO3:alpha_T0 = 0.5f ;<br> HNO3:alpha_Tdep = 0.f ;<br> HNO3:K_acid = 15.4f ;<br> HNO3:K_acid2 = 9.99999f ;<br> HNO3:Vmol_bp = 9.99999f ;<br> HNO3:psat = 9.99999f ;<br> HNO3:psat_Tdep = 9.99999f ;<br> HNO3:pss = Infinityf ;<br> HNO3:dryreac_sf = 1.f ;<br> HNO3:aerosol_density = 1000.f ;<br> HNO3:vini = 0.f ;<br> HNO3:casrn = "7697-37-2" ;<br> HNO3:aerosol_model = "" ;<br> HNO3:REFERENCE_TO = "tracer_gp: HNO3" ;<br> HNO3:coordinates = "lon lat" ;<br> HNO3:cell_methods = "time: point" ;<br> float HNO3_ave(time, lev, lat, lon) ;<br> HNO3_ave:long_name = "" ;<br> HNO3_ave:standard_name = "" ;<br> HNO3_ave:units = "mol/mol" ;<br> HNO3_ave:submodel = "mecca" ;<br> HNO3_ave:index = 118 ;<br> HNO3_ave:medium = "AIR" ;<br> HNO3_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_ave:type = "SINGLE" ;<br> HNO3_ave:number_of_timelevels = -1 ;<br> HNO3_ave:charge = "UNDEFINED" ;<br> HNO3_ave:advect = "ON" ;<br> HNO3_ave:convect = "ON" ;<br> HNO3_ave:vdiff = "ON" ;<br> HNO3_ave:drydep = "ON" ;<br> HNO3_ave:sedi = "OFF" ;<br> HNO3_ave:scav = "ON" ;<br> HNO3_ave:mix = "ON" ;<br> HNO3_ave:force_col = "OFF" ;<br> HNO3_ave:integrate = "ON" ;<br> HNO3_ave:timefilter = "ON" ;<br> HNO3_ave:force_init = "OFF" ;<br> HNO3_ave:aerosol_method = "MODAL" ;<br> HNO3_ave:aerosol_mode = "0" ;<br> HNO3_ave:aerosol_sol = "ON" ;<br> HNO3_ave:aerosol_hetice = "OFF" ;<br> HNO3_ave:hori_diff = "OFF" ;<br> HNO3_ave:relaxation = "FULL" ;<br> HNO3_ave:mmd_init = "OFF" ;<br> HNO3_ave:tag_reg_idt = "118" ;<br> HNO3_ave:tag_specific = "0" ;<br> HNO3_ave:initial\ type = "FILE" ;<br> HNO3_ave:lateral_bounds = "FILE" ;<br> HNO3_ave:damping = "ON" ;<br> HNO3_ave:grib\ table\ num = "-1" ;<br> HNO3_ave:grib\ param\ num = "-1" ;<br> HNO3_ave:mtskip = "OFF" ;<br> HNO3_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_ave:SPPT = "OFF" ;<br> HNO3_ave:blockphy = "OFF" ;<br> HNO3_ave:feedback = "ON" ;<br> HNO3_ave:molarmass = 63.02f ;<br> HNO3_ave:Henry_T0 = 163333.3f ;<br> HNO3_ave:Henry_Tdep = 8694.f ;<br> HNO3_ave:Sechenov = 9.99999f ;<br> HNO3_ave:alpha_T0 = 0.5f ;<br> HNO3_ave:alpha_Tdep = 0.f ;<br> HNO3_ave:K_acid = 15.4f ;<br> HNO3_ave:K_acid2 = 9.99999f ;<br> HNO3_ave:Vmol_bp = 9.99999f ;<br> HNO3_ave:psat = 9.99999f ;<br> HNO3_ave:psat_Tdep = 9.99999f ;<br> HNO3_ave:pss = Infinityf ;<br> HNO3_ave:dryreac_sf = 1.f ;<br> HNO3_ave:aerosol_density = 1000.f ;<br> HNO3_ave:vini = 0.f ;<br> HNO3_ave:casrn = "7697-37-2" ;<br> HNO3_ave:aerosol_model = "" ;<br> HNO3_ave:REFERENCE_TO = "tracer_gp: HNO3" ;<br> HNO3_ave:coordinates = "lon lat" ;<br> HNO3_ave:cell_methods = "time: mean" ;<br> float HNO4(time, lev, lat, lon) ;<br> HNO4:long_name = "" ;<br> HNO4:standard_name = "" ;<br> HNO4:units = "mol/mol" ;<br> HNO4:submodel = "mecca" ;<br> HNO4:index = 83 ;<br> HNO4:medium = "AIR" ;<br> HNO4:quantity = "AMOUNTFRACTION" ;<br> HNO4:type = "SINGLE" ;<br> HNO4:number_of_timelevels = -1 ;<br> HNO4:charge = "UNDEFINED" ;<br> HNO4:advect = "ON" ;<br> HNO4:convect = "ON" ;<br> HNO4:vdiff = "ON" ;<br> HNO4:drydep = "ON" ;<br> HNO4:sedi = "OFF" ;<br> HNO4:scav = "ON" ;<br> HNO4:mix = "ON" ;<br> HNO4:force_col = "OFF" ;<br> HNO4:integrate = "ON" ;<br> HNO4:timefilter = "ON" ;<br> HNO4:force_init = "OFF" ;<br> HNO4:aerosol_method = "MODAL" ;<br> HNO4:aerosol_mode = "0" ;<br> HNO4:aerosol_sol = "ON" ;<br> HNO4:aerosol_hetice = "OFF" ;<br> HNO4:hori_diff = "OFF" ;<br> HNO4:relaxation = "FULL" ;<br> HNO4:mmd_init = "OFF" ;<br> HNO4:tag_reg_idt = "83" ;<br> HNO4:tag_specific = "0" ;<br> HNO4:initial\ type = "FILE" ;<br> HNO4:lateral_bounds = "FILE" ;<br> HNO4:damping = "ON" ;<br> HNO4:grib\ table\ num = "-1" ;<br> HNO4:grib\ param\ num = "-1" ;<br> HNO4:mtskip = "OFF" ;<br> HNO4:bot_bound_cond = "ZERO FLUX" ;<br> HNO4:SPPT = "OFF" ;<br> HNO4:blockphy = "OFF" ;<br> HNO4:feedback = "ON" ;<br> HNO4:molarmass = 79.02f ;<br> HNO4:Henry_T0 = 12600.f ;<br> HNO4:Henry_Tdep = 6900.f ;<br> HNO4:Sechenov = 9.99999f ;<br> HNO4:alpha_T0 = 0.1f ;<br> HNO4:alpha_Tdep = 0.f ;<br> HNO4:K_acid = 1.e-05f ;<br> HNO4:K_acid2 = 9.99999f ;<br> HNO4:Vmol_bp = 9.99999f ;<br> HNO4:psat = 9.99999f ;<br> HNO4:psat_Tdep = 9.99999f ;<br> HNO4:pss = 1260000.f ;<br> HNO4:dryreac_sf = 1.f ;<br> HNO4:aerosol_density = 1000.f ;<br> HNO4:vini = 0.f ;<br> HNO4:casrn = "26404-66-0" ;<br> HNO4:aerosol_model = "" ;<br> HNO4:REFERENCE_TO = "tracer_gp: HNO4" ;<br> HNO4:coordinates = "lon lat" ;<br> HNO4:cell_methods = "time: point" ;<br> float HNO4_ave(time, lev, lat, lon) ;<br> HNO4_ave:long_name = "" ;<br> HNO4_ave:standard_name = "" ;<br> HNO4_ave:units = "mol/mol" ;<br> HNO4_ave:submodel = "mecca" ;<br> HNO4_ave:index = 83 ;<br> HNO4_ave:medium = "AIR" ;<br> HNO4_ave:quantity = "AMOUNTFRACTION" ;<br> HNO4_ave:type = "SINGLE" ;<br> HNO4_ave:number_of_timelevels = -1 ;<br> HNO4_ave:charge = "UNDEFINED" ;<br> HNO4_ave:advect = "ON" ;<br> HNO4_ave:convect = "ON" ;<br> HNO4_ave:vdiff = "ON" ;<br> HNO4_ave:drydep = "ON" ;<br> HNO4_ave:sedi = "OFF" ;<br> HNO4_ave:scav = "ON" ;<br> HNO4_ave:mix = "ON" ;<br> HNO4_ave:force_col = "OFF" ;<br> HNO4_ave:integrate = "ON" ;<br> HNO4_ave:timefilter = "ON" ;<br> HNO4_ave:force_init = "OFF" ;<br> HNO4_ave:aerosol_method = "MODAL" ;<br> HNO4_ave:aerosol_mode = "0" ;<br> HNO4_ave:aerosol_sol = "ON" ;<br> HNO4_ave:aerosol_hetice = "OFF" ;<br> HNO4_ave:hori_diff = "OFF" ;<br> HNO4_ave:relaxation = "FULL" ;<br> HNO4_ave:mmd_init = "OFF" ;<br> HNO4_ave:tag_reg_idt = "83" ;<br> HNO4_ave:tag_specific = "0" ;<br> HNO4_ave:initial\ type = "FILE" ;<br> HNO4_ave:lateral_bounds = "FILE" ;<br> HNO4_ave:damping = "ON" ;<br> HNO4_ave:grib\ table\ num = "-1" ;<br> HNO4_ave:grib\ param\ num = "-1" ;<br> HNO4_ave:mtskip = "OFF" ;<br> HNO4_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO4_ave:SPPT = "OFF" ;<br> HNO4_ave:blockphy = "OFF" ;<br> HNO4_ave:feedback = "ON" ;<br> HNO4_ave:molarmass = 79.02f ;<br> HNO4_ave:Henry_T0 = 12600.f ;<br> HNO4_ave:Henry_Tdep = 6900.f ;<br> HNO4_ave:Sechenov = 9.99999f ;<br> HNO4_ave:alpha_T0 = 0.1f ;<br> HNO4_ave:alpha_Tdep = 0.f ;<br> HNO4_ave:K_acid = 1.e-05f ;<br> HNO4_ave:K_acid2 = 9.99999f ;<br> HNO4_ave:Vmol_bp = 9.99999f ;<br> HNO4_ave:psat = 9.99999f ;<br> HNO4_ave:psat_Tdep = 9.99999f ;<br> HNO4_ave:pss = 1260000.f ;<br> HNO4_ave:dryreac_sf = 1.f ;<br> HNO4_ave:aerosol_density = 1000.f ;<br> HNO4_ave:vini = 0.f ;<br> HNO4_ave:casrn = "26404-66-0" ;<br> HNO4_ave:aerosol_model = "" ;<br> HNO4_ave:REFERENCE_TO = "tracer_gp: HNO4" ;<br> HNO4_ave:coordinates = "lon lat" ;<br> HNO4_ave:cell_methods = "time: mean" ;<br> float PAN(time, lev, lat, lon) ;<br> PAN:long_name = "" ;<br> PAN:standard_name = "" ;<br> PAN:units = "mol/mol" ;<br> PAN:submodel = "mecca" ;<br> PAN:index = 92 ;<br> PAN:medium = "AIR" ;<br> PAN:quantity = "AMOUNTFRACTION" ;<br> PAN:type = "SINGLE" ;<br> PAN:number_of_timelevels = -1 ;<br> PAN:charge = "UNDEFINED" ;<br> PAN:advect = "ON" ;<br> PAN:convect = "ON" ;<br> PAN:vdiff = "ON" ;<br> PAN:drydep = "ON" ;<br> PAN:sedi = "OFF" ;<br> PAN:scav = "ON" ;<br> PAN:mix = "ON" ;<br> PAN:force_col = "OFF" ;<br> PAN:integrate = "ON" ;<br> PAN:timefilter = "ON" ;<br> PAN:force_init = "OFF" ;<br> PAN:aerosol_method = "MODAL" ;<br> PAN:aerosol_mode = "0" ;<br> PAN:aerosol_sol = "ON" ;<br> PAN:aerosol_hetice = "OFF" ;<br> PAN:hori_diff = "OFF" ;<br> PAN:relaxation = "FULL" ;<br> PAN:mmd_init = "OFF" ;<br> PAN:tag_reg_idt = "92" ;<br> PAN:tag_specific = "0" ;<br> PAN:initial\ type = "FILE" ;<br> PAN:lateral_bounds = "FILE" ;<br> PAN:damping = "ON" ;<br> PAN:grib\ table\ num = "-1" ;<br> PAN:grib\ param\ num = "-1" ;<br> PAN:mtskip = "OFF" ;<br> PAN:bot_bound_cond = "ZERO FLUX" ;<br> PAN:SPPT = "OFF" ;<br> PAN:blockphy = "OFF" ;<br> PAN:feedback = "ON" ;<br> PAN:molarmass = 121.06f ;<br> PAN:Henry_T0 = 2.8f ;<br> PAN:Henry_Tdep = 5730.f ;<br> PAN:Sechenov = 9.99999f ;<br> PAN:alpha_T0 = 0.1f ;<br> PAN:alpha_Tdep = 0.f ;<br> PAN:K_acid = 9.99999f ;<br> PAN:K_acid2 = 9.99999f ;<br> PAN:Vmol_bp = 9.99999f ;<br> PAN:psat = 9.99999f ;<br> PAN:psat_Tdep = 9.99999f ;<br> PAN:pss = 2.8f ;<br> PAN:dryreac_sf = 0.1f ;<br> PAN:aerosol_density = 1000.f ;<br> PAN:vini = 0.f ;<br> PAN:casrn = "2278-22-0" ;<br> PAN:aerosol_model = "" ;<br> PAN:REFERENCE_TO = "tracer_gp: PAN" ;<br> PAN:coordinates = "lon lat" ;<br> PAN:cell_methods = "time: point" ;<br> float PAN_ave(time, lev, lat, lon) ;<br> PAN_ave:long_name = "" ;<br> PAN_ave:standard_name = "" ;<br> PAN_ave:units = "mol/mol" ;<br> PAN_ave:submodel = "mecca" ;<br> PAN_ave:index = 92 ;<br> PAN_ave:medium = "AIR" ;<br> PAN_ave:quantity = "AMOUNTFRACTION" ;<br> PAN_ave:type = "SINGLE" ;<br> PAN_ave:number_of_timelevels = -1 ;<br> PAN_ave:charge = "UNDEFINED" ;<br> PAN_ave:advect = "ON" ;<br> PAN_ave:convect = "ON" ;<br> PAN_ave:vdiff = "ON" ;<br> PAN_ave:drydep = "ON" ;<br> PAN_ave:sedi = "OFF" ;<br> PAN_ave:scav = "ON" ;<br> PAN_ave:mix = "ON" ;<br> PAN_ave:force_col = "OFF" ;<br> PAN_ave:integrate = "ON" ;<br> PAN_ave:timefilter = "ON" ;<br> PAN_ave:force_init = "OFF" ;<br> PAN_ave:aerosol_method = "MODAL" ;<br> PAN_ave:aerosol_mode = "0" ;<br> PAN_ave:aerosol_sol = "ON" ;<br> PAN_ave:aerosol_hetice = "OFF" ;<br> PAN_ave:hori_diff = "OFF" ;<br> PAN_ave:relaxation = "FULL" ;<br> PAN_ave:mmd_init = "OFF" ;<br> PAN_ave:tag_reg_idt = "92" ;<br> PAN_ave:tag_specific = "0" ;<br> PAN_ave:initial\ type = "FILE" ;<br> PAN_ave:lateral_bounds = "FILE" ;<br> PAN_ave:damping = "ON" ;<br> PAN_ave:grib\ table\ num = "-1" ;<br> PAN_ave:grib\ param\ num = "-1" ;<br> PAN_ave:mtskip = "OFF" ;<br> PAN_ave:bot_bound_cond = "ZERO FLUX" ;<br> PAN_ave:SPPT = "OFF" ;<br> PAN_ave:blockphy = "OFF" ;<br> PAN_ave:feedback = "ON" ;<br> PAN_ave:molarmass = 121.06f ;<br> PAN_ave:Henry_T0 = 2.8f ;<br> PAN_ave:Henry_Tdep = 5730.f ;<br> PAN_ave:Sechenov = 9.99999f ;<br> PAN_ave:alpha_T0 = 0.1f ;<br> PAN_ave:alpha_Tdep = 0.f ;<br> PAN_ave:K_acid = 9.99999f ;<br> PAN_ave:K_acid2 = 9.99999f ;<br> PAN_ave:Vmol_bp = 9.99999f ;<br> PAN_ave:psat = 9.99999f ;<br> PAN_ave:psat_Tdep = 9.99999f ;<br> PAN_ave:pss = 2.8f ;<br> PAN_ave:dryreac_sf = 0.1f ;<br> PAN_ave:aerosol_density = 1000.f ;<br> PAN_ave:vini = 0.f ;<br> PAN_ave:casrn = "2278-22-0" ;<br> PAN_ave:aerosol_model = "" ;<br> PAN_ave:REFERENCE_TO = "tracer_gp: PAN" ;<br> PAN_ave:coordinates = "lon lat" ;<br> PAN_ave:cell_methods = "time: mean" ;<br> float HNO3_nat(time, lev, lat, lon) ;<br> HNO3_nat:long_name = "NAT phase HNO3 molar mixing ratio" ;<br> HNO3_nat:standard_name = "" ;<br> HNO3_nat:units = "mol/mol" ;<br> HNO3_nat:submodel = "msbm" ;<br> HNO3_nat:index = 165 ;<br> HNO3_nat:medium = "AEROSOL" ;<br> HNO3_nat:quantity = "AMOUNTFRACTION" ;<br> HNO3_nat:type = "SINGLE" ;<br> HNO3_nat:number_of_timelevels = -1 ;<br> HNO3_nat:charge = "UNDEFINED" ;<br> HNO3_nat:advect = "ON" ;<br> HNO3_nat:convect = "ON" ;<br> HNO3_nat:vdiff = "ON" ;<br> HNO3_nat:drydep = "OFF" ;<br> HNO3_nat:sedi = "OFF" ;<br> HNO3_nat:scav = "OFF" ;<br> HNO3_nat:mix = "ON" ;<br> HNO3_nat:force_col = "OFF" ;<br> HNO3_nat:integrate = "ON" ;<br> HNO3_nat:timefilter = "ON" ;<br> HNO3_nat:force_init = "OFF" ;<br> HNO3_nat:aerosol_method = "MODAL" ;<br> HNO3_nat:aerosol_mode = "0" ;<br> HNO3_nat:aerosol_sol = "ON" ;<br> HNO3_nat:aerosol_hetice = "OFF" ;<br> HNO3_nat:hori_diff = "OFF" ;<br> HNO3_nat:relaxation = "FULL" ;<br> HNO3_nat:mmd_init = "OFF" ;<br> HNO3_nat:tag_reg_idt = "165" ;<br> HNO3_nat:tag_specific = "0" ;<br> HNO3_nat:initial\ type = "FILE" ;<br> HNO3_nat:lateral_bounds = "FILE" ;<br> HNO3_nat:damping = "ON" ;<br> HNO3_nat:grib\ table\ num = "-1" ;<br> HNO3_nat:grib\ param\ num = "-1" ;<br> HNO3_nat:mtskip = "OFF" ;<br> HNO3_nat:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_nat:SPPT = "OFF" ;<br> HNO3_nat:blockphy = "OFF" ;<br> HNO3_nat:feedback = "ON" ;<br> HNO3_nat:molarmass = 63.02f ;<br> HNO3_nat:Henry_T0 = 163333.3f ;<br> HNO3_nat:Henry_Tdep = 8694.f ;<br> HNO3_nat:Sechenov = 9.99999f ;<br> HNO3_nat:alpha_T0 = 0.5f ;<br> HNO3_nat:alpha_Tdep = 0.f ;<br> HNO3_nat:K_acid = 15.4f ;<br> HNO3_nat:K_acid2 = 9.99999f ;<br> HNO3_nat:Vmol_bp = 9.99999f ;<br> HNO3_nat:psat = 9.99999f ;<br> HNO3_nat:psat_Tdep = 9.99999f ;<br> HNO3_nat:pss = 1.f ;<br> HNO3_nat:dryreac_sf = 1.f ;<br> HNO3_nat:aerosol_density = 1000.f ;<br> HNO3_nat:vini = 0.f ;<br> HNO3_nat:casrn = "7697-37-2" ;<br> HNO3_nat:aerosol_model = "" ;<br> HNO3_nat:REFERENCE_TO = "tracer_gp: HNO3_nat" ;<br> HNO3_nat:coordinates = "lon lat" ;<br> HNO3_nat:cell_methods = "time: point" ;<br> float HNO3_nat_ave(time, lev, lat, lon) ;<br> HNO3_nat_ave:long_name = "NAT phase HNO3 molar mixing ratio" ;<br> HNO3_nat_ave:standard_name = "" ;<br> HNO3_nat_ave:units = "mol/mol" ;<br> HNO3_nat_ave:submodel = "msbm" ;<br> HNO3_nat_ave:index = 165 ;<br> HNO3_nat_ave:medium = "AEROSOL" ;<br> HNO3_nat_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_nat_ave:type = "SINGLE" ;<br> HNO3_nat_ave:number_of_timelevels = -1 ;<br> HNO3_nat_ave:charge = "UNDEFINED" ;<br> HNO3_nat_ave:advect = "ON" ;<br> HNO3_nat_ave:convect = "ON" ;<br> HNO3_nat_ave:vdiff = "ON" ;<br> HNO3_nat_ave:drydep = "OFF" ;<br> HNO3_nat_ave:sedi = "OFF" ;<br> HNO3_nat_ave:scav = "OFF" ;<br> HNO3_nat_ave:mix = "ON" ;<br> HNO3_nat_ave:force_col = "OFF" ;<br> HNO3_nat_ave:integrate = "ON" ;<br> HNO3_nat_ave:timefilter = "ON" ;<br> HNO3_nat_ave:force_init = "OFF" ;<br> HNO3_nat_ave:aerosol_method = "MODAL" ;<br> HNO3_nat_ave:aerosol_mode = "0" ;<br> HNO3_nat_ave:aerosol_sol = "ON" ;<br> HNO3_nat_ave:aerosol_hetice = "OFF" ;<br> HNO3_nat_ave:hori_diff = "OFF" ;<br> HNO3_nat_ave:relaxation = "FULL" ;<br> HNO3_nat_ave:mmd_init = "OFF" ;<br> HNO3_nat_ave:tag_reg_idt = "165" ;<br> HNO3_nat_ave:tag_specific = "0" ;<br> HNO3_nat_ave:initial\ type = "FILE" ;<br> HNO3_nat_ave:lateral_bounds = "FILE" ;<br> HNO3_nat_ave:damping = "ON" ;<br> HNO3_nat_ave:grib\ table\ num = "-1" ;<br> HNO3_nat_ave:grib\ param\ num = "-1" ;<br> HNO3_nat_ave:mtskip = "OFF" ;<br> HNO3_nat_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_nat_ave:SPPT = "OFF" ;<br> HNO3_nat_ave:blockphy = "OFF" ;<br> HNO3_nat_ave:feedback = "ON" ;<br> HNO3_nat_ave:molarmass = 63.02f ;<br> HNO3_nat_ave:Henry_T0 = 163333.3f ;<br> HNO3_nat_ave:Henry_Tdep = 8694.f ;<br> HNO3_nat_ave:Sechenov = 9.99999f ;<br> HNO3_nat_ave:alpha_T0 = 0.5f ;<br> HNO3_nat_ave:alpha_Tdep = 0.f ;<br> HNO3_nat_ave:K_acid = 15.4f ;<br> HNO3_nat_ave:K_acid2 = 9.99999f ;<br> HNO3_nat_ave:Vmol_bp = 9.99999f ;<br> HNO3_nat_ave:psat = 9.99999f ;<br> HNO3_nat_ave:psat_Tdep = 9.99999f ;<br> HNO3_nat_ave:pss = 1.f ;<br> HNO3_nat_ave:dryreac_sf = 1.f ;<br> HNO3_nat_ave:aerosol_density = 1000.f ;<br> HNO3_nat_ave:vini = 0.f ;<br> HNO3_nat_ave:casrn = "7697-37-2" ;<br> HNO3_nat_ave:aerosol_model = "" ;<br> HNO3_nat_ave:REFERENCE_TO = "tracer_gp: HNO3_nat" ;<br> HNO3_nat_ave:coordinates = "lon lat" ;<br> HNO3_nat_ave:cell_methods = "time: mean" ;<br> float NH2OH(time, lev, lat, lon) ;<br> NH2OH:long_name = "" ;<br> NH2OH:standard_name = "" ;<br> NH2OH:units = "mol/mol" ;<br> NH2OH:submodel = "mecca" ;<br> NH2OH:index = 67 ;<br> NH2OH:medium = "AIR" ;<br> NH2OH:quantity = "AMOUNTFRACTION" ;<br> NH2OH:type = "SINGLE" ;<br> NH2OH:number_of_timelevels = -1 ;<br> NH2OH:charge = "UNDEFINED" ;<br> NH2OH:advect = "ON" ;<br> NH2OH:convect = "ON" ;<br> NH2OH:vdiff = "ON" ;<br> NH2OH:drydep = "OFF" ;<br> NH2OH:sedi = "OFF" ;<br> NH2OH:scav = "ON" ;<br> NH2OH:mix = "ON" ;<br> NH2OH:force_col = "OFF" ;<br> NH2OH:integrate = "ON" ;<br> NH2OH:timefilter = "ON" ;<br> NH2OH:force_init = "OFF" ;<br> NH2OH:aerosol_method = "MODAL" ;<br> NH2OH:aerosol_mode = "0" ;<br> NH2OH:aerosol_sol = "ON" ;<br> NH2OH:aerosol_hetice = "OFF" ;<br> NH2OH:hori_diff = "OFF" ;<br> NH2OH:relaxation = "FULL" ;<br> NH2OH:mmd_init = "OFF" ;<br> NH2OH:tag_reg_idt = "67" ;<br> NH2OH:tag_specific = "0" ;<br> NH2OH:initial\ type = "FILE" ;<br> NH2OH:lateral_bounds = "FILE" ;<br> NH2OH:damping = "ON" ;<br> NH2OH:grib\ table\ num = "-1" ;<br> NH2OH:grib\ param\ num = "-1" ;<br> NH2OH:mtskip = "OFF" ;<br> NH2OH:bot_bound_cond = "ZERO FLUX" ;<br> NH2OH:SPPT = "OFF" ;<br> NH2OH:blockphy = "OFF" ;<br> NH2OH:feedback = "ON" ;<br> NH2OH:molarmass = 33.04f ;<br> NH2OH:Henry_T0 = -9.99999f ;<br> NH2OH:Henry_Tdep = -9.99999f ;<br> NH2OH:Sechenov = 9.99999f ;<br> NH2OH:alpha_T0 = 0.1f ;<br> NH2OH:alpha_Tdep = 0.f ;<br> NH2OH:K_acid = 9.99999f ;<br> NH2OH:K_acid2 = 9.99999f ;<br> NH2OH:Vmol_bp = 9.99999f ;<br> NH2OH:psat = 9.99999f ;<br> NH2OH:psat_Tdep = 9.99999f ;<br> NH2OH:pss = -9.99999f ;<br> NH2OH:dryreac_sf = 0.f ;<br> NH2OH:aerosol_density = 1000.f ;<br> NH2OH:vini = 0.f ;<br> NH2OH:casrn = "7803-49-8" ;<br> NH2OH:aerosol_model = "" ;<br> NH2OH:REFERENCE_TO = "tracer_gp: NH2OH" ;<br> NH2OH:coordinates = "lon lat" ;<br> NH2OH:cell_methods = "time: point" ;<br> float NH2OH_ave(time, lev, lat, lon) ;<br> NH2OH_ave:long_name = "" ;<br> NH2OH_ave:standard_name = "" ;<br> NH2OH_ave:units = "mol/mol" ;<br> NH2OH_ave:submodel = "mecca" ;<br> NH2OH_ave:index = 67 ;<br> NH2OH_ave:medium = "AIR" ;<br> NH2OH_ave:quantity = "AMOUNTFRACTION" ;<br> NH2OH_ave:type = "SINGLE" ;<br> NH2OH_ave:number_of_timelevels = -1 ;<br> NH2OH_ave:charge = "UNDEFINED" ;<br> NH2OH_ave:advect = "ON" ;<br> NH2OH_ave:convect = "ON" ;<br> NH2OH_ave:vdiff = "ON" ;<br> NH2OH_ave:drydep = "OFF" ;<br> NH2OH_ave:sedi = "OFF" ;<br> NH2OH_ave:scav = "ON" ;<br> NH2OH_ave:mix = "ON" ;<br> NH2OH_ave:force_col = "OFF" ;<br> NH2OH_ave:integrate = "ON" ;<br> NH2OH_ave:timefilter = "ON" ;<br> NH2OH_ave:force_init = "OFF" ;<br> NH2OH_ave:aerosol_method = "MODAL" ;<br> NH2OH_ave:aerosol_mode = "0" ;<br> NH2OH_ave:aerosol_sol = "ON" ;<br> NH2OH_ave:aerosol_hetice = "OFF" ;<br> NH2OH_ave:hori_diff = "OFF" ;<br> NH2OH_ave:relaxation = "FULL" ;<br> NH2OH_ave:mmd_init = "OFF" ;<br> NH2OH_ave:tag_reg_idt = "67" ;<br> NH2OH_ave:tag_specific = "0" ;<br> NH2OH_ave:initial\ type = "FILE" ;<br> NH2OH_ave:lateral_bounds = "FILE" ;<br> NH2OH_ave:damping = "ON" ;<br> NH2OH_ave:grib\ table\ num = "-1" ;<br> NH2OH_ave:grib\ param\ num = "-1" ;<br> NH2OH_ave:mtskip = "OFF" ;<br> NH2OH_ave:bot_bound_cond = "ZERO FLUX" ;<br> NH2OH_ave:SPPT = "OFF" ;<br> NH2OH_ave:blockphy = "OFF" ;<br> NH2OH_ave:feedback = "ON" ;<br> NH2OH_ave:molarmass = 33.04f ;<br> NH2OH_ave:Henry_T0 = -9.99999f ;<br> NH2OH_ave:Henry_Tdep = -9.99999f ;<br> NH2OH_ave:Sechenov = 9.99999f ;<br> NH2OH_ave:alpha_T0 = 0.1f ;<br> NH2OH_ave:alpha_Tdep = 0.f ;<br> NH2OH_ave:K_acid = 9.99999f ;<br> NH2OH_ave:K_acid2 = 9.99999f ;<br> NH2OH_ave:Vmol_bp = 9.99999f ;<br> NH2OH_ave:psat = 9.99999f ;<br> NH2OH_ave:psat_Tdep = 9.99999f ;<br> NH2OH_ave:pss = -9.99999f ;<br> NH2OH_ave:dryreac_sf = 0.f ;<br> NH2OH_ave:aerosol_density = 1000.f ;<br> NH2OH_ave:vini = 0.f ;<br> NH2OH_ave:casrn = "7803-49-8" ;<br> NH2OH_ave:aerosol_model = "" ;<br> NH2OH_ave:REFERENCE_TO = "tracer_gp: NH2OH" ;<br> NH2OH_ave:coordinates = "lon lat" ;<br> NH2OH_ave:cell_methods = "time: mean" ;<br> float NHOH(time, lev, lat, lon) ;<br> NHOH:long_name = "" ;<br> NHOH:standard_name = "" ;<br> NHOH:units = "mol/mol" ;<br> NHOH:submodel = "mecca" ;<br> NHOH:index = 79 ;<br> NHOH:medium = "AIR" ;<br> NHOH:quantity = "AMOUNTFRACTION" ;<br> NHOH:type = "SINGLE" ;<br> NHOH:number_of_timelevels = -1 ;<br> NHOH:charge = "UNDEFINED" ;<br> NHOH:advect = "ON" ;<br> NHOH:convect = "ON" ;<br> NHOH:vdiff = "ON" ;<br> NHOH:drydep = "OFF" ;<br> NHOH:sedi = "OFF" ;<br> NHOH:scav = "ON" ;<br> NHOH:mix = "ON" ;<br> NHOH:force_col = "OFF" ;<br> NHOH:integrate = "ON" ;<br> NHOH:timefilter = "ON" ;<br> NHOH:force_init = "OFF" ;<br> NHOH:aerosol_method = "MODAL" ;<br> NHOH:aerosol_mode = "0" ;<br> NHOH:aerosol_sol = "ON" ;<br> NHOH:aerosol_hetice = "OFF" ;<br> NHOH:hori_diff = "OFF" ;<br> NHOH:relaxation = "FULL" ;<br> NHOH:mmd_init = "OFF" ;<br> NHOH:tag_reg_idt = "79" ;<br> NHOH:tag_specific = "0" ;<br> NHOH:initial\ type = "FILE" ;<br> NHOH:lateral_bounds = "FILE" ;<br> NHOH:damping = "ON" ;<br> NHOH:grib\ table\ num = "-1" ;<br> NHOH:grib\ param\ num = "-1" ;<br> NHOH:mtskip = "OFF" ;<br> NHOH:bot_bound_cond = "ZERO FLUX" ;<br> NHOH:SPPT = "OFF" ;<br> NHOH:blockphy = "OFF" ;<br> NHOH:feedback = "ON" ;<br> NHOH:molarmass = 32.03f ;<br> NHOH:Henry_T0 = -9.99999f ;<br> NHOH:Henry_Tdep = -9.99999f ;<br> NHOH:Sechenov = 9.99999f ;<br> NHOH:alpha_T0 = 0.1f ;<br> NHOH:alpha_Tdep = 0.f ;<br> NHOH:K_acid = 9.99999f ;<br> NHOH:K_acid2 = 9.99999f ;<br> NHOH:Vmol_bp = 9.99999f ;<br> NHOH:psat = 9.99999f ;<br> NHOH:psat_Tdep = 9.99999f ;<br> NHOH:pss = -9.99999f ;<br> NHOH:dryreac_sf = 0.f ;<br> NHOH:aerosol_density = 1000.f ;<br> NHOH:vini = 0.f ;<br> NHOH:casrn = "?" ;<br> NHOH:aerosol_model = "" ;<br> NHOH:REFERENCE_TO = "tracer_gp: NHOH" ;<br> NHOH:coordinates = "lon lat" ;<br> NHOH:cell_methods = "time: point" ;<br> float NHOH_ave(time, lev, lat, lon) ;<br> NHOH_ave:long_name = "" ;<br> NHOH_ave:standard_name = "" ;<br> NHOH_ave:units = "mol/mol" ;<br> NHOH_ave:submodel = "mecca" ;<br> NHOH_ave:index = 79 ;<br> NHOH_ave:medium = "AIR" ;<br> NHOH_ave:quantity = "AMOUNTFRACTION" ;<br> NHOH_ave:type = "SINGLE" ;<br> NHOH_ave:number_of_timelevels = -1 ;<br> NHOH_ave:charge = "UNDEFINED" ;<br> NHOH_ave:advect = "ON" ;<br> NHOH_ave:convect = "ON" ;<br> NHOH_ave:vdiff = "ON" ;<br> NHOH_ave:drydep = "OFF" ;<br> NHOH_ave:sedi = "OFF" ;<br> NHOH_ave:scav = "ON" ;<br> NHOH_ave:mix = "ON" ;<br> NHOH_ave:force_col = "OFF" ;<br> NHOH_ave:integrate = "ON" ;<br> NHOH_ave:timefilter = "ON" ;<br> NHOH_ave:force_init = "OFF" ;<br> NHOH_ave:aerosol_method = "MODAL" ;<br> NHOH_ave:aerosol_mode = "0" ;<br> NHOH_ave:aerosol_sol = "ON" ;<br> NHOH_ave:aerosol_hetice = "OFF" ;<br> NHOH_ave:hori_diff = "OFF" ;<br> NHOH_ave:relaxation = "FULL" ;<br> NHOH_ave:mmd_init = "OFF" ;<br> NHOH_ave:tag_reg_idt = "79" ;<br> NHOH_ave:tag_specific = "0" ;<br> NHOH_ave:initial\ type = "FILE" ;<br> NHOH_ave:lateral_bounds = "FILE" ;<br> NHOH_ave:damping = "ON" ;<br> NHOH_ave:grib\ table\ num = "-1" ;<br> NHOH_ave:grib\ param\ num = "-1" ;<br> NHOH_ave:mtskip = "OFF" ;<br> NHOH_ave:bot_bound_cond = "ZERO FLUX" ;<br> NHOH_ave:SPPT = "OFF" ;<br> NHOH_ave:blockphy = "OFF" ;<br> NHOH_ave:feedback = "ON" ;<br> NHOH_ave:molarmass = 32.03f ;<br> NHOH_ave:Henry_T0 = -9.99999f ;<br> NHOH_ave:Henry_Tdep = -9.99999f ;<br> NHOH_ave:Sechenov = 9.99999f ;<br> NHOH_ave:alpha_T0 = 0.1f ;<br> NHOH_ave:alpha_Tdep = 0.f ;<br> NHOH_ave:K_acid = 9.99999f ;<br> NHOH_ave:K_acid2 = 9.99999f ;<br> NHOH_ave:Vmol_bp = 9.99999f ;<br> NHOH_ave:psat = 9.99999f ;<br> NHOH_ave:psat_Tdep = 9.99999f ;<br> NHOH_ave:pss = -9.99999f ;<br> NHOH_ave:dryreac_sf = 0.f ;<br> NHOH_ave:aerosol_density = 1000.f ;<br> NHOH_ave:vini = 0.f ;<br> NHOH_ave:casrn = "?" ;<br> NHOH_ave:aerosol_model = "" ;<br> NHOH_ave:REFERENCE_TO = "tracer_gp: NHOH" ;<br> NHOH_ave:coordinates = "lon lat" ;<br> NHOH_ave:cell_methods = "time: mean" ;<br> float NH2O(time, lev, lat, lon) ;<br> NH2O:long_name = "" ;<br> NH2O:standard_name = "" ;<br> NH2O:units = "mol/mol" ;<br> NH2O:submodel = "mecca" ;<br> NH2O:index = 102 ;<br> NH2O:medium = "AIR" ;<br> NH2O:quantity = "AMOUNTFRACTION" ;<br> NH2O:type = "SINGLE" ;<br> NH2O:number_of_timelevels = -1 ;<br> NH2O:charge = "UNDEFINED" ;<br> NH2O:advect = "ON" ;<br> NH2O:convect = "ON" ;<br> NH2O:vdiff = "ON" ;<br> NH2O:drydep = "OFF" ;<br> NH2O:sedi = "OFF" ;<br> NH2O:scav = "ON" ;<br> NH2O:mix = "ON" ;<br> NH2O:force_col = "OFF" ;<br> NH2O:integrate = "ON" ;<br> NH2O:timefilter = "ON" ;<br> NH2O:force_init = "OFF" ;<br> NH2O:aerosol_method = "MODAL" ;<br> NH2O:aerosol_mode = "0" ;<br> NH2O:aerosol_sol = "ON" ;<br> NH2O:aerosol_hetice = "OFF" ;<br> NH2O:hori_diff = "OFF" ;<br> NH2O:relaxation = "FULL" ;<br> NH2O:mmd_init = "OFF" ;<br> NH2O:tag_reg_idt = "102" ;<br> NH2O:tag_specific = "0" ;<br> NH2O:initial\ type = "FILE" ;<br> NH2O:lateral_bounds = "FILE" ;<br> NH2O:damping = "ON" ;<br> NH2O:grib\ table\ num = "-1" ;<br> NH2O:grib\ param\ num = "-1" ;<br> NH2O:mtskip = "OFF" ;<br> NH2O:bot_bound_cond = "ZERO FLUX" ;<br> NH2O:SPPT = "OFF" ;<br> NH2O:blockphy = "OFF" ;<br> NH2O:feedback = "ON" ;<br> NH2O:molarmass = 32.03f ;<br> NH2O:Henry_T0 = -9.99999f ;<br> NH2O:Henry_Tdep = -9.99999f ;<br> NH2O:Sechenov = 9.99999f ;<br> NH2O:alpha_T0 = 0.1f ;<br> NH2O:alpha_Tdep = 0.f ;<br> NH2O:K_acid = 9.99999f ;<br> NH2O:K_acid2 = 9.99999f ;<br> NH2O:Vmol_bp = 9.99999f ;<br> NH2O:psat = 9.99999f ;<br> NH2O:psat_Tdep = 9.99999f ;<br> NH2O:pss = -9.99999f ;<br> NH2O:dryreac_sf = 0.f ;<br> NH2O:aerosol_density = 1000.f ;<br> NH2O:vini = 0.f ;<br> NH2O:casrn = "?" ;<br> NH2O:aerosol_model = "" ;<br> NH2O:REFERENCE_TO = "tracer_gp: NH2O" ;<br> NH2O:coordinates = "lon lat" ;<br> NH2O:cell_methods = "time: point" ;<br> float NH2O_ave(time, lev, lat, lon) ;<br> NH2O_ave:long_name = "" ;<br> NH2O_ave:standard_name = "" ;<br> NH2O_ave:units = "mol/mol" ;<br> NH2O_ave:submodel = "mecca" ;<br> NH2O_ave:index = 102 ;<br> NH2O_ave:medium = "AIR" ;<br> NH2O_ave:quantity = "AMOUNTFRACTION" ;<br> NH2O_ave:type = "SINGLE" ;<br> NH2O_ave:number_of_timelevels = -1 ;<br> NH2O_ave:charge = "UNDEFINED" ;<br> NH2O_ave:advect = "ON" ;<br> NH2O_ave:convect = "ON" ;<br> NH2O_ave:vdiff = "ON" ;<br> NH2O_ave:drydep = "OFF" ;<br> NH2O_ave:sedi = "OFF" ;<br> NH2O_ave:scav = "ON" ;<br> NH2O_ave:mix = "ON" ;<br> NH2O_ave:force_col = "OFF" ;<br> NH2O_ave:integrate = "ON" ;<br> NH2O_ave:timefilter = "ON" ;<br> NH2O_ave:force_init = "OFF" ;<br> NH2O_ave:aerosol_method = "MODAL" ;<br> NH2O_ave:aerosol_mode = "0" ;<br> NH2O_ave:aerosol_sol = "ON" ;<br> NH2O_ave:aerosol_hetice = "OFF" ;<br> NH2O_ave:hori_diff = "OFF" ;<br> NH2O_ave:relaxation = "FULL" ;<br> NH2O_ave:mmd_init = "OFF" ;<br> NH2O_ave:tag_reg_idt = "102" ;<br> NH2O_ave:tag_specific = "0" ;<br> NH2O_ave:initial\ type = "FILE" ;<br> NH2O_ave:lateral_bounds = "FILE" ;<br> NH2O_ave:damping = "ON" ;<br> NH2O_ave:grib\ table\ num = "-1" ;<br> NH2O_ave:grib\ param\ num = "-1" ;<br> NH2O_ave:mtskip = "OFF" ;<br> NH2O_ave:bot_bound_cond = "ZERO FLUX" ;<br> NH2O_ave:SPPT = "OFF" ;<br> NH2O_ave:blockphy = "OFF" ;<br> NH2O_ave:feedback = "ON" ;<br> NH2O_ave:molarmass = 32.03f ;<br> NH2O_ave:Henry_T0 = -9.99999f ;<br> NH2O_ave:Henry_Tdep = -9.99999f ;<br> NH2O_ave:Sechenov = 9.99999f ;<br> NH2O_ave:alpha_T0 = 0.1f ;<br> NH2O_ave:alpha_Tdep = 0.f ;<br> NH2O_ave:K_acid = 9.99999f ;<br> NH2O_ave:K_acid2 = 9.99999f ;<br> NH2O_ave:Vmol_bp = 9.99999f ;<br> NH2O_ave:psat = 9.99999f ;<br> NH2O_ave:psat_Tdep = 9.99999f ;<br> NH2O_ave:pss = -9.99999f ;<br> NH2O_ave:dryreac_sf = 0.f ;<br> NH2O_ave:aerosol_density = 1000.f ;<br> NH2O_ave:vini = 0.f ;<br> NH2O_ave:casrn = "?" ;<br> NH2O_ave:aerosol_model = "" ;<br> NH2O_ave:REFERENCE_TO = "tracer_gp: NH2O" ;<br> NH2O_ave:coordinates = "lon lat" ;<br> NH2O_ave:cell_methods = "time: mean" ;<br> float HNO(time, lev, lat, lon) ;<br> HNO:long_name = "" ;<br> HNO:standard_name = "" ;<br> HNO:units = "mol/mol" ;<br> HNO:submodel = "mecca" ;<br> HNO:index = 104 ;<br> HNO:medium = "AIR" ;<br> HNO:quantity = "AMOUNTFRACTION" ;<br> HNO:type = "SINGLE" ;<br> HNO:number_of_timelevels = -1 ;<br> HNO:charge = "UNDEFINED" ;<br> HNO:advect = "ON" ;<br> HNO:convect = "ON" ;<br> HNO:vdiff = "ON" ;<br> HNO:drydep = "OFF" ;<br> HNO:sedi = "OFF" ;<br> HNO:scav = "ON" ;<br> HNO:mix = "ON" ;<br> HNO:force_col = "OFF" ;<br> HNO:integrate = "ON" ;<br> HNO:timefilter = "ON" ;<br> HNO:force_init = "OFF" ;<br> HNO:aerosol_method = "MODAL" ;<br> HNO:aerosol_mode = "0" ;<br> HNO:aerosol_sol = "ON" ;<br> HNO:aerosol_hetice = "OFF" ;<br> HNO:hori_diff = "OFF" ;<br> HNO:relaxation = "FULL" ;<br> HNO:mmd_init = "OFF" ;<br> HNO:tag_reg_idt = "104" ;<br> HNO:tag_specific = "0" ;<br> HNO:initial\ type = "FILE" ;<br> HNO:lateral_bounds = "FILE" ;<br> HNO:damping = "ON" ;<br> HNO:grib\ table\ num = "-1" ;<br> HNO:grib\ param\ num = "-1" ;<br> HNO:mtskip = "OFF" ;<br> HNO:bot_bound_cond = "ZERO FLUX" ;<br> HNO:SPPT = "OFF" ;<br> HNO:blockphy = "OFF" ;<br> HNO:feedback = "ON" ;<br> HNO:molarmass = 31.02f ;<br> HNO:Henry_T0 = -9.99999f ;<br> HNO:Henry_Tdep = -9.99999f ;<br> HNO:Sechenov = 9.99999f ;<br> HNO:alpha_T0 = 0.1f ;<br> HNO:alpha_Tdep = 0.f ;<br> HNO:K_acid = 9.99999f ;<br> HNO:K_acid2 = 9.99999f ;<br> HNO:Vmol_bp = 9.99999f ;<br> HNO:psat = 9.99999f ;<br> HNO:psat_Tdep = 9.99999f ;<br> HNO:pss = -9.99999f ;<br> HNO:dryreac_sf = 0.f ;<br> HNO:aerosol_density = 1000.f ;<br> HNO:vini = 0.f ;<br> HNO:casrn = "14332-28-6" ;<br> HNO:aerosol_model = "" ;<br> HNO:REFERENCE_TO = "tracer_gp: HNO" ;<br> HNO:coordinates = "lon lat" ;<br> HNO:cell_methods = "time: point" ;<br> float HNO_ave(time, lev, lat, lon) ;<br> HNO_ave:long_name = "" ;<br> HNO_ave:standard_name = "" ;<br> HNO_ave:units = "mol/mol" ;<br> HNO_ave:submodel = "mecca" ;<br> HNO_ave:index = 104 ;<br> HNO_ave:medium = "AIR" ;<br> HNO_ave:quantity = "AMOUNTFRACTION" ;<br> HNO_ave:type = "SINGLE" ;<br> HNO_ave:number_of_timelevels = -1 ;<br> HNO_ave:charge = "UNDEFINED" ;<br> HNO_ave:advect = "ON" ;<br> HNO_ave:convect = "ON" ;<br> HNO_ave:vdiff = "ON" ;<br> HNO_ave:drydep = "OFF" ;<br> HNO_ave:sedi = "OFF" ;<br> HNO_ave:scav = "ON" ;<br> HNO_ave:mix = "ON" ;<br> HNO_ave:force_col = "OFF" ;<br> HNO_ave:integrate = "ON" ;<br> HNO_ave:timefilter = "ON" ;<br> HNO_ave:force_init = "OFF" ;<br> HNO_ave:aerosol_method = "MODAL" ;<br> HNO_ave:aerosol_mode = "0" ;<br> HNO_ave:aerosol_sol = "ON" ;<br> HNO_ave:aerosol_hetice = "OFF" ;<br> HNO_ave:hori_diff = "OFF" ;<br> HNO_ave:relaxation = "FULL" ;<br> HNO_ave:mmd_init = "OFF" ;<br> HNO_ave:tag_reg_idt = "104" ;<br> HNO_ave:tag_specific = "0" ;<br> HNO_ave:initial\ type = "FILE" ;<br> HNO_ave:lateral_bounds = "FILE" ;<br> HNO_ave:damping = "ON" ;<br> HNO_ave:grib\ table\ num = "-1" ;<br> HNO_ave:grib\ param\ num = "-1" ;<br> HNO_ave:mtskip = "OFF" ;<br> HNO_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO_ave:SPPT = "OFF" ;<br> HNO_ave:blockphy = "OFF" ;<br> HNO_ave:feedback = "ON" ;<br> HNO_ave:molarmass = 31.02f ;<br> HNO_ave:Henry_T0 = -9.99999f ;<br> HNO_ave:Henry_Tdep = -9.99999f ;<br> HNO_ave:Sechenov = 9.99999f ;<br> HNO_ave:alpha_T0 = 0.1f ;<br> HNO_ave:alpha_Tdep = 0.f ;<br> HNO_ave:K_acid = 9.99999f ;<br> HNO_ave:K_acid2 = 9.99999f ;<br> HNO_ave:Vmol_bp = 9.99999f ;<br> HNO_ave:psat = 9.99999f ;<br> HNO_ave:psat_Tdep = 9.99999f ;<br> HNO_ave:pss = -9.99999f ;<br> HNO_ave:dryreac_sf = 0.f ;<br> HNO_ave:aerosol_density = 1000.f ;<br> HNO_ave:vini = 0.f ;<br> HNO_ave:casrn = "14332-28-6" ;<br> HNO_ave:aerosol_model = "" ;<br> HNO_ave:REFERENCE_TO = "tracer_gp: HNO" ;<br> HNO_ave:coordinates = "lon lat" ;<br> HNO_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize1(time, lev, lat, lon) ;<br> HNO3_natsize1:long_name = "NAT in sizebin 1, HNO3 molar mixing ratio" ;<br> HNO3_natsize1:standard_name = "" ;<br> HNO3_natsize1:units = "mol/mol" ;<br> HNO3_natsize1:submodel = "msbm" ;<br> HNO3_natsize1:index = 166 ;<br> HNO3_natsize1:medium = "AEROSOL" ;<br> HNO3_natsize1:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize1:type = "SINGLE" ;<br> HNO3_natsize1:number_of_timelevels = -1 ;<br> HNO3_natsize1:charge = "UNDEFINED" ;<br> HNO3_natsize1:advect = "ON" ;<br> HNO3_natsize1:convect = "ON" ;<br> HNO3_natsize1:vdiff = "ON" ;<br> HNO3_natsize1:drydep = "OFF" ;<br> HNO3_natsize1:sedi = "OFF" ;<br> HNO3_natsize1:scav = "OFF" ;<br> HNO3_natsize1:mix = "ON" ;<br> HNO3_natsize1:force_col = "OFF" ;<br> HNO3_natsize1:integrate = "ON" ;<br> HNO3_natsize1:timefilter = "ON" ;<br> HNO3_natsize1:force_init = "OFF" ;<br> HNO3_natsize1:aerosol_method = "MODAL" ;<br> HNO3_natsize1:aerosol_mode = "0" ;<br> HNO3_natsize1:aerosol_sol = "ON" ;<br> HNO3_natsize1:aerosol_hetice = "OFF" ;<br> HNO3_natsize1:hori_diff = "OFF" ;<br> HNO3_natsize1:relaxation = "FULL" ;<br> HNO3_natsize1:mmd_init = "OFF" ;<br> HNO3_natsize1:tag_reg_idt = "166" ;<br> HNO3_natsize1:tag_specific = "0" ;<br> HNO3_natsize1:initial\ type = "FILE" ;<br> HNO3_natsize1:lateral_bounds = "FILE" ;<br> HNO3_natsize1:damping = "ON" ;<br> HNO3_natsize1:grib\ table\ num = "-1" ;<br> HNO3_natsize1:grib\ param\ num = "-1" ;<br> HNO3_natsize1:mtskip = "OFF" ;<br> HNO3_natsize1:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize1:SPPT = "OFF" ;<br> HNO3_natsize1:blockphy = "OFF" ;<br> HNO3_natsize1:feedback = "ON" ;<br> HNO3_natsize1:molarmass = 63.02f ;<br> HNO3_natsize1:Henry_T0 = 163333.3f ;<br> HNO3_natsize1:Henry_Tdep = 8694.f ;<br> HNO3_natsize1:Sechenov = 9.99999f ;<br> HNO3_natsize1:alpha_T0 = 0.5f ;<br> HNO3_natsize1:alpha_Tdep = 0.f ;<br> HNO3_natsize1:K_acid = 15.4f ;<br> HNO3_natsize1:K_acid2 = 9.99999f ;<br> HNO3_natsize1:Vmol_bp = 9.99999f ;<br> HNO3_natsize1:psat = 9.99999f ;<br> HNO3_natsize1:psat_Tdep = 9.99999f ;<br> HNO3_natsize1:pss = 1.f ;<br> HNO3_natsize1:dryreac_sf = 1.f ;<br> HNO3_natsize1:aerosol_density = 1000.f ;<br> HNO3_natsize1:vini = 0.f ;<br> HNO3_natsize1:casrn = "7697-37-2" ;<br> HNO3_natsize1:aerosol_model = "" ;<br> HNO3_natsize1:REFERENCE_TO = "tracer_gp: HNO3_natsize1" ;<br> HNO3_natsize1:coordinates = "lon lat" ;<br> HNO3_natsize1:cell_methods = "time: point" ;<br> float HNO3_natsize1_ave(time, lev, lat, lon) ;<br> HNO3_natsize1_ave:long_name = "NAT in sizebin 1, HNO3 molar mixing ratio" ;<br> HNO3_natsize1_ave:standard_name = "" ;<br> HNO3_natsize1_ave:units = "mol/mol" ;<br> HNO3_natsize1_ave:submodel = "msbm" ;<br> HNO3_natsize1_ave:index = 166 ;<br> HNO3_natsize1_ave:medium = "AEROSOL" ;<br> HNO3_natsize1_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize1_ave:type = "SINGLE" ;<br> HNO3_natsize1_ave:number_of_timelevels = -1 ;<br> HNO3_natsize1_ave:charge = "UNDEFINED" ;<br> HNO3_natsize1_ave:advect = "ON" ;<br> HNO3_natsize1_ave:convect = "ON" ;<br> HNO3_natsize1_ave:vdiff = "ON" ;<br> HNO3_natsize1_ave:drydep = "OFF" ;<br> HNO3_natsize1_ave:sedi = "OFF" ;<br> HNO3_natsize1_ave:scav = "OFF" ;<br> HNO3_natsize1_ave:mix = "ON" ;<br> HNO3_natsize1_ave:force_col = "OFF" ;<br> HNO3_natsize1_ave:integrate = "ON" ;<br> HNO3_natsize1_ave:timefilter = "ON" ;<br> HNO3_natsize1_ave:force_init = "OFF" ;<br> HNO3_natsize1_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize1_ave:aerosol_mode = "0" ;<br> HNO3_natsize1_ave:aerosol_sol = "ON" ;<br> HNO3_natsize1_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize1_ave:hori_diff = "OFF" ;<br> HNO3_natsize1_ave:relaxation = "FULL" ;<br> HNO3_natsize1_ave:mmd_init = "OFF" ;<br> HNO3_natsize1_ave:tag_reg_idt = "166" ;<br> HNO3_natsize1_ave:tag_specific = "0" ;<br> HNO3_natsize1_ave:initial\ type = "FILE" ;<br> HNO3_natsize1_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize1_ave:damping = "ON" ;<br> HNO3_natsize1_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize1_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize1_ave:mtskip = "OFF" ;<br> HNO3_natsize1_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize1_ave:SPPT = "OFF" ;<br> HNO3_natsize1_ave:blockphy = "OFF" ;<br> HNO3_natsize1_ave:feedback = "ON" ;<br> HNO3_natsize1_ave:molarmass = 63.02f ;<br> HNO3_natsize1_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize1_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize1_ave:Sechenov = 9.99999f ;<br> HNO3_natsize1_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize1_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize1_ave:K_acid = 15.4f ;<br> HNO3_natsize1_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize1_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize1_ave:psat = 9.99999f ;<br> HNO3_natsize1_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize1_ave:pss = 1.f ;<br> HNO3_natsize1_ave:dryreac_sf = 1.f ;<br> HNO3_natsize1_ave:aerosol_density = 1000.f ;<br> HNO3_natsize1_ave:vini = 0.f ;<br> HNO3_natsize1_ave:casrn = "7697-37-2" ;<br> HNO3_natsize1_ave:aerosol_model = "" ;<br> HNO3_natsize1_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize1" ;<br> HNO3_natsize1_ave:coordinates = "lon lat" ;<br> HNO3_natsize1_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize2(time, lev, lat, lon) ;<br> HNO3_natsize2:long_name = "NAT in sizebin 2, HNO3 molar mixing ratio" ;<br> HNO3_natsize2:standard_name = "" ;<br> HNO3_natsize2:units = "mol/mol" ;<br> HNO3_natsize2:submodel = "msbm" ;<br> HNO3_natsize2:index = 167 ;<br> HNO3_natsize2:medium = "AEROSOL" ;<br> HNO3_natsize2:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize2:type = "SINGLE" ;<br> HNO3_natsize2:number_of_timelevels = -1 ;<br> HNO3_natsize2:charge = "UNDEFINED" ;<br> HNO3_natsize2:advect = "ON" ;<br> HNO3_natsize2:convect = "ON" ;<br> HNO3_natsize2:vdiff = "ON" ;<br> HNO3_natsize2:drydep = "OFF" ;<br> HNO3_natsize2:sedi = "OFF" ;<br> HNO3_natsize2:scav = "OFF" ;<br> HNO3_natsize2:mix = "ON" ;<br> HNO3_natsize2:force_col = "OFF" ;<br> HNO3_natsize2:integrate = "ON" ;<br> HNO3_natsize2:timefilter = "ON" ;<br> HNO3_natsize2:force_init = "OFF" ;<br> HNO3_natsize2:aerosol_method = "MODAL" ;<br> HNO3_natsize2:aerosol_mode = "0" ;<br> HNO3_natsize2:aerosol_sol = "ON" ;<br> HNO3_natsize2:aerosol_hetice = "OFF" ;<br> HNO3_natsize2:hori_diff = "OFF" ;<br> HNO3_natsize2:relaxation = "FULL" ;<br> HNO3_natsize2:mmd_init = "OFF" ;<br> HNO3_natsize2:tag_reg_idt = "167" ;<br> HNO3_natsize2:tag_specific = "0" ;<br> HNO3_natsize2:initial\ type = "FILE" ;<br> HNO3_natsize2:lateral_bounds = "FILE" ;<br> HNO3_natsize2:damping = "ON" ;<br> HNO3_natsize2:grib\ table\ num = "-1" ;<br> HNO3_natsize2:grib\ param\ num = "-1" ;<br> HNO3_natsize2:mtskip = "OFF" ;<br> HNO3_natsize2:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize2:SPPT = "OFF" ;<br> HNO3_natsize2:blockphy = "OFF" ;<br> HNO3_natsize2:feedback = "ON" ;<br> HNO3_natsize2:molarmass = 63.02f ;<br> HNO3_natsize2:Henry_T0 = 163333.3f ;<br> HNO3_natsize2:Henry_Tdep = 8694.f ;<br> HNO3_natsize2:Sechenov = 9.99999f ;<br> HNO3_natsize2:alpha_T0 = 0.5f ;<br> HNO3_natsize2:alpha_Tdep = 0.f ;<br> HNO3_natsize2:K_acid = 15.4f ;<br> HNO3_natsize2:K_acid2 = 9.99999f ;<br> HNO3_natsize2:Vmol_bp = 9.99999f ;<br> HNO3_natsize2:psat = 9.99999f ;<br> HNO3_natsize2:psat_Tdep = 9.99999f ;<br> HNO3_natsize2:pss = 1.f ;<br> HNO3_natsize2:dryreac_sf = 1.f ;<br> HNO3_natsize2:aerosol_density = 1000.f ;<br> HNO3_natsize2:vini = 0.f ;<br> HNO3_natsize2:casrn = "7697-37-2" ;<br> HNO3_natsize2:aerosol_model = "" ;<br> HNO3_natsize2:REFERENCE_TO = "tracer_gp: HNO3_natsize2" ;<br> HNO3_natsize2:coordinates = "lon lat" ;<br> HNO3_natsize2:cell_methods = "time: point" ;<br> float HNO3_natsize2_ave(time, lev, lat, lon) ;<br> HNO3_natsize2_ave:long_name = "NAT in sizebin 2, HNO3 molar mixing ratio" ;<br> HNO3_natsize2_ave:standard_name = "" ;<br> HNO3_natsize2_ave:units = "mol/mol" ;<br> HNO3_natsize2_ave:submodel = "msbm" ;<br> HNO3_natsize2_ave:index = 167 ;<br> HNO3_natsize2_ave:medium = "AEROSOL" ;<br> HNO3_natsize2_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize2_ave:type = "SINGLE" ;<br> HNO3_natsize2_ave:number_of_timelevels = -1 ;<br> HNO3_natsize2_ave:charge = "UNDEFINED" ;<br> HNO3_natsize2_ave:advect = "ON" ;<br> HNO3_natsize2_ave:convect = "ON" ;<br> HNO3_natsize2_ave:vdiff = "ON" ;<br> HNO3_natsize2_ave:drydep = "OFF" ;<br> HNO3_natsize2_ave:sedi = "OFF" ;<br> HNO3_natsize2_ave:scav = "OFF" ;<br> HNO3_natsize2_ave:mix = "ON" ;<br> HNO3_natsize2_ave:force_col = "OFF" ;<br> HNO3_natsize2_ave:integrate = "ON" ;<br> HNO3_natsize2_ave:timefilter = "ON" ;<br> HNO3_natsize2_ave:force_init = "OFF" ;<br> HNO3_natsize2_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize2_ave:aerosol_mode = "0" ;<br> HNO3_natsize2_ave:aerosol_sol = "ON" ;<br> HNO3_natsize2_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize2_ave:hori_diff = "OFF" ;<br> HNO3_natsize2_ave:relaxation = "FULL" ;<br> HNO3_natsize2_ave:mmd_init = "OFF" ;<br> HNO3_natsize2_ave:tag_reg_idt = "167" ;<br> HNO3_natsize2_ave:tag_specific = "0" ;<br> HNO3_natsize2_ave:initial\ type = "FILE" ;<br> HNO3_natsize2_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize2_ave:damping = "ON" ;<br> HNO3_natsize2_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize2_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize2_ave:mtskip = "OFF" ;<br> HNO3_natsize2_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize2_ave:SPPT = "OFF" ;<br> HNO3_natsize2_ave:blockphy = "OFF" ;<br> HNO3_natsize2_ave:feedback = "ON" ;<br> HNO3_natsize2_ave:molarmass = 63.02f ;<br> HNO3_natsize2_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize2_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize2_ave:Sechenov = 9.99999f ;<br> HNO3_natsize2_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize2_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize2_ave:K_acid = 15.4f ;<br> HNO3_natsize2_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize2_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize2_ave:psat = 9.99999f ;<br> HNO3_natsize2_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize2_ave:pss = 1.f ;<br> HNO3_natsize2_ave:dryreac_sf = 1.f ;<br> HNO3_natsize2_ave:aerosol_density = 1000.f ;<br> HNO3_natsize2_ave:vini = 0.f ;<br> HNO3_natsize2_ave:casrn = "7697-37-2" ;<br> HNO3_natsize2_ave:aerosol_model = "" ;<br> HNO3_natsize2_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize2" ;<br> HNO3_natsize2_ave:coordinates = "lon lat" ;<br> HNO3_natsize2_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize3(time, lev, lat, lon) ;<br> HNO3_natsize3:long_name = "NAT in sizebin 3, HNO3 molar mixing ratio" ;<br> HNO3_natsize3:standard_name = "" ;<br> HNO3_natsize3:units = "mol/mol" ;<br> HNO3_natsize3:submodel = "msbm" ;<br> HNO3_natsize3:index = 168 ;<br> HNO3_natsize3:medium = "AEROSOL" ;<br> HNO3_natsize3:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize3:type = "SINGLE" ;<br> HNO3_natsize3:number_of_timelevels = -1 ;<br> HNO3_natsize3:charge = "UNDEFINED" ;<br> HNO3_natsize3:advect = "ON" ;<br> HNO3_natsize3:convect = "ON" ;<br> HNO3_natsize3:vdiff = "ON" ;<br> HNO3_natsize3:drydep = "OFF" ;<br> HNO3_natsize3:sedi = "OFF" ;<br> HNO3_natsize3:scav = "OFF" ;<br> HNO3_natsize3:mix = "ON" ;<br> HNO3_natsize3:force_col = "OFF" ;<br> HNO3_natsize3:integrate = "ON" ;<br> HNO3_natsize3:timefilter = "ON" ;<br> HNO3_natsize3:force_init = "OFF" ;<br> HNO3_natsize3:aerosol_method = "MODAL" ;<br> HNO3_natsize3:aerosol_mode = "0" ;<br> HNO3_natsize3:aerosol_sol = "ON" ;<br> HNO3_natsize3:aerosol_hetice = "OFF" ;<br> HNO3_natsize3:hori_diff = "OFF" ;<br> HNO3_natsize3:relaxation = "FULL" ;<br> HNO3_natsize3:mmd_init = "OFF" ;<br> HNO3_natsize3:tag_reg_idt = "168" ;<br> HNO3_natsize3:tag_specific = "0" ;<br> HNO3_natsize3:initial\ type = "FILE" ;<br> HNO3_natsize3:lateral_bounds = "FILE" ;<br> HNO3_natsize3:damping = "ON" ;<br> HNO3_natsize3:grib\ table\ num = "-1" ;<br> HNO3_natsize3:grib\ param\ num = "-1" ;<br> HNO3_natsize3:mtskip = "OFF" ;<br> HNO3_natsize3:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize3:SPPT = "OFF" ;<br> HNO3_natsize3:blockphy = "OFF" ;<br> HNO3_natsize3:feedback = "ON" ;<br> HNO3_natsize3:molarmass = 63.02f ;<br> HNO3_natsize3:Henry_T0 = 163333.3f ;<br> HNO3_natsize3:Henry_Tdep = 8694.f ;<br> HNO3_natsize3:Sechenov = 9.99999f ;<br> HNO3_natsize3:alpha_T0 = 0.5f ;<br> HNO3_natsize3:alpha_Tdep = 0.f ;<br> HNO3_natsize3:K_acid = 15.4f ;<br> HNO3_natsize3:K_acid2 = 9.99999f ;<br> HNO3_natsize3:Vmol_bp = 9.99999f ;<br> HNO3_natsize3:psat = 9.99999f ;<br> HNO3_natsize3:psat_Tdep = 9.99999f ;<br> HNO3_natsize3:pss = 1.f ;<br> HNO3_natsize3:dryreac_sf = 1.f ;<br> HNO3_natsize3:aerosol_density = 1000.f ;<br> HNO3_natsize3:vini = 0.f ;<br> HNO3_natsize3:casrn = "7697-37-2" ;<br> HNO3_natsize3:aerosol_model = "" ;<br> HNO3_natsize3:REFERENCE_TO = "tracer_gp: HNO3_natsize3" ;<br> HNO3_natsize3:coordinates = "lon lat" ;<br> HNO3_natsize3:cell_methods = "time: point" ;<br> float HNO3_natsize3_ave(time, lev, lat, lon) ;<br> HNO3_natsize3_ave:long_name = "NAT in sizebin 3, HNO3 molar mixing ratio" ;<br> HNO3_natsize3_ave:standard_name = "" ;<br> HNO3_natsize3_ave:units = "mol/mol" ;<br> HNO3_natsize3_ave:submodel = "msbm" ;<br> HNO3_natsize3_ave:index = 168 ;<br> HNO3_natsize3_ave:medium = "AEROSOL" ;<br> HNO3_natsize3_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize3_ave:type = "SINGLE" ;<br> HNO3_natsize3_ave:number_of_timelevels = -1 ;<br> HNO3_natsize3_ave:charge = "UNDEFINED" ;<br> HNO3_natsize3_ave:advect = "ON" ;<br> HNO3_natsize3_ave:convect = "ON" ;<br> HNO3_natsize3_ave:vdiff = "ON" ;<br> HNO3_natsize3_ave:drydep = "OFF" ;<br> HNO3_natsize3_ave:sedi = "OFF" ;<br> HNO3_natsize3_ave:scav = "OFF" ;<br> HNO3_natsize3_ave:mix = "ON" ;<br> HNO3_natsize3_ave:force_col = "OFF" ;<br> HNO3_natsize3_ave:integrate = "ON" ;<br> HNO3_natsize3_ave:timefilter = "ON" ;<br> HNO3_natsize3_ave:force_init = "OFF" ;<br> HNO3_natsize3_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize3_ave:aerosol_mode = "0" ;<br> HNO3_natsize3_ave:aerosol_sol = "ON" ;<br> HNO3_natsize3_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize3_ave:hori_diff = "OFF" ;<br> HNO3_natsize3_ave:relaxation = "FULL" ;<br> HNO3_natsize3_ave:mmd_init = "OFF" ;<br> HNO3_natsize3_ave:tag_reg_idt = "168" ;<br> HNO3_natsize3_ave:tag_specific = "0" ;<br> HNO3_natsize3_ave:initial\ type = "FILE" ;<br> HNO3_natsize3_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize3_ave:damping = "ON" ;<br> HNO3_natsize3_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize3_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize3_ave:mtskip = "OFF" ;<br> HNO3_natsize3_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize3_ave:SPPT = "OFF" ;<br> HNO3_natsize3_ave:blockphy = "OFF" ;<br> HNO3_natsize3_ave:feedback = "ON" ;<br> HNO3_natsize3_ave:molarmass = 63.02f ;<br> HNO3_natsize3_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize3_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize3_ave:Sechenov = 9.99999f ;<br> HNO3_natsize3_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize3_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize3_ave:K_acid = 15.4f ;<br> HNO3_natsize3_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize3_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize3_ave:psat = 9.99999f ;<br> HNO3_natsize3_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize3_ave:pss = 1.f ;<br> HNO3_natsize3_ave:dryreac_sf = 1.f ;<br> HNO3_natsize3_ave:aerosol_density = 1000.f ;<br> HNO3_natsize3_ave:vini = 0.f ;<br> HNO3_natsize3_ave:casrn = "7697-37-2" ;<br> HNO3_natsize3_ave:aerosol_model = "" ;<br> HNO3_natsize3_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize3" ;<br> HNO3_natsize3_ave:coordinates = "lon lat" ;<br> HNO3_natsize3_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize4(time, lev, lat, lon) ;<br> HNO3_natsize4:long_name = "NAT in sizebin 4, HNO3 molar mixing ratio" ;<br> HNO3_natsize4:standard_name = "" ;<br> HNO3_natsize4:units = "mol/mol" ;<br> HNO3_natsize4:submodel = "msbm" ;<br> HNO3_natsize4:index = 169 ;<br> HNO3_natsize4:medium = "AEROSOL" ;<br> HNO3_natsize4:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize4:type = "SINGLE" ;<br> HNO3_natsize4:number_of_timelevels = -1 ;<br> HNO3_natsize4:charge = "UNDEFINED" ;<br> HNO3_natsize4:advect = "ON" ;<br> HNO3_natsize4:convect = "ON" ;<br> HNO3_natsize4:vdiff = "ON" ;<br> HNO3_natsize4:drydep = "OFF" ;<br> HNO3_natsize4:sedi = "OFF" ;<br> HNO3_natsize4:scav = "OFF" ;<br> HNO3_natsize4:mix = "ON" ;<br> HNO3_natsize4:force_col = "OFF" ;<br> HNO3_natsize4:integrate = "ON" ;<br> HNO3_natsize4:timefilter = "ON" ;<br> HNO3_natsize4:force_init = "OFF" ;<br> HNO3_natsize4:aerosol_method = "MODAL" ;<br> HNO3_natsize4:aerosol_mode = "0" ;<br> HNO3_natsize4:aerosol_sol = "ON" ;<br> HNO3_natsize4:aerosol_hetice = "OFF" ;<br> HNO3_natsize4:hori_diff = "OFF" ;<br> HNO3_natsize4:relaxation = "FULL" ;<br> HNO3_natsize4:mmd_init = "OFF" ;<br> HNO3_natsize4:tag_reg_idt = "169" ;<br> HNO3_natsize4:tag_specific = "0" ;<br> HNO3_natsize4:initial\ type = "FILE" ;<br> HNO3_natsize4:lateral_bounds = "FILE" ;<br> HNO3_natsize4:damping = "ON" ;<br> HNO3_natsize4:grib\ table\ num = "-1" ;<br> HNO3_natsize4:grib\ param\ num = "-1" ;<br> HNO3_natsize4:mtskip = "OFF" ;<br> HNO3_natsize4:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize4:SPPT = "OFF" ;<br> HNO3_natsize4:blockphy = "OFF" ;<br> HNO3_natsize4:feedback = "ON" ;<br> HNO3_natsize4:molarmass = 63.02f ;<br> HNO3_natsize4:Henry_T0 = 163333.3f ;<br> HNO3_natsize4:Henry_Tdep = 8694.f ;<br> HNO3_natsize4:Sechenov = 9.99999f ;<br> HNO3_natsize4:alpha_T0 = 0.5f ;<br> HNO3_natsize4:alpha_Tdep = 0.f ;<br> HNO3_natsize4:K_acid = 15.4f ;<br> HNO3_natsize4:K_acid2 = 9.99999f ;<br> HNO3_natsize4:Vmol_bp = 9.99999f ;<br> HNO3_natsize4:psat = 9.99999f ;<br> HNO3_natsize4:psat_Tdep = 9.99999f ;<br> HNO3_natsize4:pss = 1.f ;<br> HNO3_natsize4:dryreac_sf = 1.f ;<br> HNO3_natsize4:aerosol_density = 1000.f ;<br> HNO3_natsize4:vini = 0.f ;<br> HNO3_natsize4:casrn = "7697-37-2" ;<br> HNO3_natsize4:aerosol_model = "" ;<br> HNO3_natsize4:REFERENCE_TO = "tracer_gp: HNO3_natsize4" ;<br> HNO3_natsize4:coordinates = "lon lat" ;<br> HNO3_natsize4:cell_methods = "time: point" ;<br> float HNO3_natsize4_ave(time, lev, lat, lon) ;<br> HNO3_natsize4_ave:long_name = "NAT in sizebin 4, HNO3 molar mixing ratio" ;<br> HNO3_natsize4_ave:standard_name = "" ;<br> HNO3_natsize4_ave:units = "mol/mol" ;<br> HNO3_natsize4_ave:submodel = "msbm" ;<br> HNO3_natsize4_ave:index = 169 ;<br> HNO3_natsize4_ave:medium = "AEROSOL" ;<br> HNO3_natsize4_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize4_ave:type = "SINGLE" ;<br> HNO3_natsize4_ave:number_of_timelevels = -1 ;<br> HNO3_natsize4_ave:charge = "UNDEFINED" ;<br> HNO3_natsize4_ave:advect = "ON" ;<br> HNO3_natsize4_ave:convect = "ON" ;<br> HNO3_natsize4_ave:vdiff = "ON" ;<br> HNO3_natsize4_ave:drydep = "OFF" ;<br> HNO3_natsize4_ave:sedi = "OFF" ;<br> HNO3_natsize4_ave:scav = "OFF" ;<br> HNO3_natsize4_ave:mix = "ON" ;<br> HNO3_natsize4_ave:force_col = "OFF" ;<br> HNO3_natsize4_ave:integrate = "ON" ;<br> HNO3_natsize4_ave:timefilter = "ON" ;<br> HNO3_natsize4_ave:force_init = "OFF" ;<br> HNO3_natsize4_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize4_ave:aerosol_mode = "0" ;<br> HNO3_natsize4_ave:aerosol_sol = "ON" ;<br> HNO3_natsize4_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize4_ave:hori_diff = "OFF" ;<br> HNO3_natsize4_ave:relaxation = "FULL" ;<br> HNO3_natsize4_ave:mmd_init = "OFF" ;<br> HNO3_natsize4_ave:tag_reg_idt = "169" ;<br> HNO3_natsize4_ave:tag_specific = "0" ;<br> HNO3_natsize4_ave:initial\ type = "FILE" ;<br> HNO3_natsize4_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize4_ave:damping = "ON" ;<br> HNO3_natsize4_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize4_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize4_ave:mtskip = "OFF" ;<br> HNO3_natsize4_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize4_ave:SPPT = "OFF" ;<br> HNO3_natsize4_ave:blockphy = "OFF" ;<br> HNO3_natsize4_ave:feedback = "ON" ;<br> HNO3_natsize4_ave:molarmass = 63.02f ;<br> HNO3_natsize4_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize4_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize4_ave:Sechenov = 9.99999f ;<br> HNO3_natsize4_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize4_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize4_ave:K_acid = 15.4f ;<br> HNO3_natsize4_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize4_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize4_ave:psat = 9.99999f ;<br> HNO3_natsize4_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize4_ave:pss = 1.f ;<br> HNO3_natsize4_ave:dryreac_sf = 1.f ;<br> HNO3_natsize4_ave:aerosol_density = 1000.f ;<br> HNO3_natsize4_ave:vini = 0.f ;<br> HNO3_natsize4_ave:casrn = "7697-37-2" ;<br> HNO3_natsize4_ave:aerosol_model = "" ;<br> HNO3_natsize4_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize4" ;<br> HNO3_natsize4_ave:coordinates = "lon lat" ;<br> HNO3_natsize4_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize5(time, lev, lat, lon) ;<br> HNO3_natsize5:long_name = "NAT in sizebin 5, HNO3 molar mixing ratio" ;<br> HNO3_natsize5:standard_name = "" ;<br> HNO3_natsize5:units = "mol/mol" ;<br> HNO3_natsize5:submodel = "msbm" ;<br> HNO3_natsize5:index = 170 ;<br> HNO3_natsize5:medium = "AEROSOL" ;<br> HNO3_natsize5:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize5:type = "SINGLE" ;<br> HNO3_natsize5:number_of_timelevels = -1 ;<br> HNO3_natsize5:charge = "UNDEFINED" ;<br> HNO3_natsize5:advect = "ON" ;<br> HNO3_natsize5:convect = "ON" ;<br> HNO3_natsize5:vdiff = "ON" ;<br> HNO3_natsize5:drydep = "OFF" ;<br> HNO3_natsize5:sedi = "OFF" ;<br> HNO3_natsize5:scav = "OFF" ;<br> HNO3_natsize5:mix = "ON" ;<br> HNO3_natsize5:force_col = "OFF" ;<br> HNO3_natsize5:integrate = "ON" ;<br> HNO3_natsize5:timefilter = "ON" ;<br> HNO3_natsize5:force_init = "OFF" ;<br> HNO3_natsize5:aerosol_method = "MODAL" ;<br> HNO3_natsize5:aerosol_mode = "0" ;<br> HNO3_natsize5:aerosol_sol = "ON" ;<br> HNO3_natsize5:aerosol_hetice = "OFF" ;<br> HNO3_natsize5:hori_diff = "OFF" ;<br> HNO3_natsize5:relaxation = "FULL" ;<br> HNO3_natsize5:mmd_init = "OFF" ;<br> HNO3_natsize5:tag_reg_idt = "170" ;<br> HNO3_natsize5:tag_specific = "0" ;<br> HNO3_natsize5:initial\ type = "FILE" ;<br> HNO3_natsize5:lateral_bounds = "FILE" ;<br> HNO3_natsize5:damping = "ON" ;<br> HNO3_natsize5:grib\ table\ num = "-1" ;<br> HNO3_natsize5:grib\ param\ num = "-1" ;<br> HNO3_natsize5:mtskip = "OFF" ;<br> HNO3_natsize5:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize5:SPPT = "OFF" ;<br> HNO3_natsize5:blockphy = "OFF" ;<br> HNO3_natsize5:feedback = "ON" ;<br> HNO3_natsize5:molarmass = 63.02f ;<br> HNO3_natsize5:Henry_T0 = 163333.3f ;<br> HNO3_natsize5:Henry_Tdep = 8694.f ;<br> HNO3_natsize5:Sechenov = 9.99999f ;<br> HNO3_natsize5:alpha_T0 = 0.5f ;<br> HNO3_natsize5:alpha_Tdep = 0.f ;<br> HNO3_natsize5:K_acid = 15.4f ;<br> HNO3_natsize5:K_acid2 = 9.99999f ;<br> HNO3_natsize5:Vmol_bp = 9.99999f ;<br> HNO3_natsize5:psat = 9.99999f ;<br> HNO3_natsize5:psat_Tdep = 9.99999f ;<br> HNO3_natsize5:pss = 1.f ;<br> HNO3_natsize5:dryreac_sf = 1.f ;<br> HNO3_natsize5:aerosol_density = 1000.f ;<br> HNO3_natsize5:vini = 0.f ;<br> HNO3_natsize5:casrn = "7697-37-2" ;<br> HNO3_natsize5:aerosol_model = "" ;<br> HNO3_natsize5:REFERENCE_TO = "tracer_gp: HNO3_natsize5" ;<br> HNO3_natsize5:coordinates = "lon lat" ;<br> HNO3_natsize5:cell_methods = "time: point" ;<br> float HNO3_natsize5_ave(time, lev, lat, lon) ;<br> HNO3_natsize5_ave:long_name = "NAT in sizebin 5, HNO3 molar mixing ratio" ;<br> HNO3_natsize5_ave:standard_name = "" ;<br> HNO3_natsize5_ave:units = "mol/mol" ;<br> HNO3_natsize5_ave:submodel = "msbm" ;<br> HNO3_natsize5_ave:index = 170 ;<br> HNO3_natsize5_ave:medium = "AEROSOL" ;<br> HNO3_natsize5_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize5_ave:type = "SINGLE" ;<br> HNO3_natsize5_ave:number_of_timelevels = -1 ;<br> HNO3_natsize5_ave:charge = "UNDEFINED" ;<br> HNO3_natsize5_ave:advect = "ON" ;<br> HNO3_natsize5_ave:convect = "ON" ;<br> HNO3_natsize5_ave:vdiff = "ON" ;<br> HNO3_natsize5_ave:drydep = "OFF" ;<br> HNO3_natsize5_ave:sedi = "OFF" ;<br> HNO3_natsize5_ave:scav = "OFF" ;<br> HNO3_natsize5_ave:mix = "ON" ;<br> HNO3_natsize5_ave:force_col = "OFF" ;<br> HNO3_natsize5_ave:integrate = "ON" ;<br> HNO3_natsize5_ave:timefilter = "ON" ;<br> HNO3_natsize5_ave:force_init = "OFF" ;<br> HNO3_natsize5_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize5_ave:aerosol_mode = "0" ;<br> HNO3_natsize5_ave:aerosol_sol = "ON" ;<br> HNO3_natsize5_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize5_ave:hori_diff = "OFF" ;<br> HNO3_natsize5_ave:relaxation = "FULL" ;<br> HNO3_natsize5_ave:mmd_init = "OFF" ;<br> HNO3_natsize5_ave:tag_reg_idt = "170" ;<br> HNO3_natsize5_ave:tag_specific = "0" ;<br> HNO3_natsize5_ave:initial\ type = "FILE" ;<br> HNO3_natsize5_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize5_ave:damping = "ON" ;<br> HNO3_natsize5_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize5_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize5_ave:mtskip = "OFF" ;<br> HNO3_natsize5_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize5_ave:SPPT = "OFF" ;<br> HNO3_natsize5_ave:blockphy = "OFF" ;<br> HNO3_natsize5_ave:feedback = "ON" ;<br> HNO3_natsize5_ave:molarmass = 63.02f ;<br> HNO3_natsize5_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize5_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize5_ave:Sechenov = 9.99999f ;<br> HNO3_natsize5_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize5_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize5_ave:K_acid = 15.4f ;<br> HNO3_natsize5_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize5_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize5_ave:psat = 9.99999f ;<br> HNO3_natsize5_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize5_ave:pss = 1.f ;<br> HNO3_natsize5_ave:dryreac_sf = 1.f ;<br> HNO3_natsize5_ave:aerosol_density = 1000.f ;<br> HNO3_natsize5_ave:vini = 0.f ;<br> HNO3_natsize5_ave:casrn = "7697-37-2" ;<br> HNO3_natsize5_ave:aerosol_model = "" ;<br> HNO3_natsize5_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize5" ;<br> HNO3_natsize5_ave:coordinates = "lon lat" ;<br> HNO3_natsize5_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize6(time, lev, lat, lon) ;<br> HNO3_natsize6:long_name = "NAT in sizebin 6, HNO3 molar mixing ratio" ;<br> HNO3_natsize6:standard_name = "" ;<br> HNO3_natsize6:units = "mol/mol" ;<br> HNO3_natsize6:submodel = "msbm" ;<br> HNO3_natsize6:index = 171 ;<br> HNO3_natsize6:medium = "AEROSOL" ;<br> HNO3_natsize6:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize6:type = "SINGLE" ;<br> HNO3_natsize6:number_of_timelevels = -1 ;<br> HNO3_natsize6:charge = "UNDEFINED" ;<br> HNO3_natsize6:advect = "ON" ;<br> HNO3_natsize6:convect = "ON" ;<br> HNO3_natsize6:vdiff = "ON" ;<br> HNO3_natsize6:drydep = "OFF" ;<br> HNO3_natsize6:sedi = "OFF" ;<br> HNO3_natsize6:scav = "OFF" ;<br> HNO3_natsize6:mix = "ON" ;<br> HNO3_natsize6:force_col = "OFF" ;<br> HNO3_natsize6:integrate = "ON" ;<br> HNO3_natsize6:timefilter = "ON" ;<br> HNO3_natsize6:force_init = "OFF" ;<br> HNO3_natsize6:aerosol_method = "MODAL" ;<br> HNO3_natsize6:aerosol_mode = "0" ;<br> HNO3_natsize6:aerosol_sol = "ON" ;<br> HNO3_natsize6:aerosol_hetice = "OFF" ;<br> HNO3_natsize6:hori_diff = "OFF" ;<br> HNO3_natsize6:relaxation = "FULL" ;<br> HNO3_natsize6:mmd_init = "OFF" ;<br> HNO3_natsize6:tag_reg_idt = "171" ;<br> HNO3_natsize6:tag_specific = "0" ;<br> HNO3_natsize6:initial\ type = "FILE" ;<br> HNO3_natsize6:lateral_bounds = "FILE" ;<br> HNO3_natsize6:damping = "ON" ;<br> HNO3_natsize6:grib\ table\ num = "-1" ;<br> HNO3_natsize6:grib\ param\ num = "-1" ;<br> HNO3_natsize6:mtskip = "OFF" ;<br> HNO3_natsize6:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize6:SPPT = "OFF" ;<br> HNO3_natsize6:blockphy = "OFF" ;<br> HNO3_natsize6:feedback = "ON" ;<br> HNO3_natsize6:molarmass = 63.02f ;<br> HNO3_natsize6:Henry_T0 = 163333.3f ;<br> HNO3_natsize6:Henry_Tdep = 8694.f ;<br> HNO3_natsize6:Sechenov = 9.99999f ;<br> HNO3_natsize6:alpha_T0 = 0.5f ;<br> HNO3_natsize6:alpha_Tdep = 0.f ;<br> HNO3_natsize6:K_acid = 15.4f ;<br> HNO3_natsize6:K_acid2 = 9.99999f ;<br> HNO3_natsize6:Vmol_bp = 9.99999f ;<br> HNO3_natsize6:psat = 9.99999f ;<br> HNO3_natsize6:psat_Tdep = 9.99999f ;<br> HNO3_natsize6:pss = 1.f ;<br> HNO3_natsize6:dryreac_sf = 1.f ;<br> HNO3_natsize6:aerosol_density = 1000.f ;<br> HNO3_natsize6:vini = 0.f ;<br> HNO3_natsize6:casrn = "7697-37-2" ;<br> HNO3_natsize6:aerosol_model = "" ;<br> HNO3_natsize6:REFERENCE_TO = "tracer_gp: HNO3_natsize6" ;<br> HNO3_natsize6:coordinates = "lon lat" ;<br> HNO3_natsize6:cell_methods = "time: point" ;<br> float HNO3_natsize6_ave(time, lev, lat, lon) ;<br> HNO3_natsize6_ave:long_name = "NAT in sizebin 6, HNO3 molar mixing ratio" ;<br> HNO3_natsize6_ave:standard_name = "" ;<br> HNO3_natsize6_ave:units = "mol/mol" ;<br> HNO3_natsize6_ave:submodel = "msbm" ;<br> HNO3_natsize6_ave:index = 171 ;<br> HNO3_natsize6_ave:medium = "AEROSOL" ;<br> HNO3_natsize6_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize6_ave:type = "SINGLE" ;<br> HNO3_natsize6_ave:number_of_timelevels = -1 ;<br> HNO3_natsize6_ave:charge = "UNDEFINED" ;<br> HNO3_natsize6_ave:advect = "ON" ;<br> HNO3_natsize6_ave:convect = "ON" ;<br> HNO3_natsize6_ave:vdiff = "ON" ;<br> HNO3_natsize6_ave:drydep = "OFF" ;<br> HNO3_natsize6_ave:sedi = "OFF" ;<br> HNO3_natsize6_ave:scav = "OFF" ;<br> HNO3_natsize6_ave:mix = "ON" ;<br> HNO3_natsize6_ave:force_col = "OFF" ;<br> HNO3_natsize6_ave:integrate = "ON" ;<br> HNO3_natsize6_ave:timefilter = "ON" ;<br> HNO3_natsize6_ave:force_init = "OFF" ;<br> HNO3_natsize6_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize6_ave:aerosol_mode = "0" ;<br> HNO3_natsize6_ave:aerosol_sol = "ON" ;<br> HNO3_natsize6_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize6_ave:hori_diff = "OFF" ;<br> HNO3_natsize6_ave:relaxation = "FULL" ;<br> HNO3_natsize6_ave:mmd_init = "OFF" ;<br> HNO3_natsize6_ave:tag_reg_idt = "171" ;<br> HNO3_natsize6_ave:tag_specific = "0" ;<br> HNO3_natsize6_ave:initial\ type = "FILE" ;<br> HNO3_natsize6_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize6_ave:damping = "ON" ;<br> HNO3_natsize6_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize6_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize6_ave:mtskip = "OFF" ;<br> HNO3_natsize6_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize6_ave:SPPT = "OFF" ;<br> HNO3_natsize6_ave:blockphy = "OFF" ;<br> HNO3_natsize6_ave:feedback = "ON" ;<br> HNO3_natsize6_ave:molarmass = 63.02f ;<br> HNO3_natsize6_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize6_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize6_ave:Sechenov = 9.99999f ;<br> HNO3_natsize6_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize6_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize6_ave:K_acid = 15.4f ;<br> HNO3_natsize6_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize6_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize6_ave:psat = 9.99999f ;<br> HNO3_natsize6_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize6_ave:pss = 1.f ;<br> HNO3_natsize6_ave:dryreac_sf = 1.f ;<br> HNO3_natsize6_ave:aerosol_density = 1000.f ;<br> HNO3_natsize6_ave:vini = 0.f ;<br> HNO3_natsize6_ave:casrn = "7697-37-2" ;<br> HNO3_natsize6_ave:aerosol_model = "" ;<br> HNO3_natsize6_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize6" ;<br> HNO3_natsize6_ave:coordinates = "lon lat" ;<br> HNO3_natsize6_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize7(time, lev, lat, lon) ;<br> HNO3_natsize7:long_name = "NAT in sizebin 7, HNO3 molar mixing ratio" ;<br> HNO3_natsize7:standard_name = "" ;<br> HNO3_natsize7:units = "mol/mol" ;<br> HNO3_natsize7:submodel = "msbm" ;<br> HNO3_natsize7:index = 172 ;<br> HNO3_natsize7:medium = "AEROSOL" ;<br> HNO3_natsize7:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize7:type = "SINGLE" ;<br> HNO3_natsize7:number_of_timelevels = -1 ;<br> HNO3_natsize7:charge = "UNDEFINED" ;<br> HNO3_natsize7:advect = "ON" ;<br> HNO3_natsize7:convect = "ON" ;<br> HNO3_natsize7:vdiff = "ON" ;<br> HNO3_natsize7:drydep = "OFF" ;<br> HNO3_natsize7:sedi = "OFF" ;<br> HNO3_natsize7:scav = "OFF" ;<br> HNO3_natsize7:mix = "ON" ;<br> HNO3_natsize7:force_col = "OFF" ;<br> HNO3_natsize7:integrate = "ON" ;<br> HNO3_natsize7:timefilter = "ON" ;<br> HNO3_natsize7:force_init = "OFF" ;<br> HNO3_natsize7:aerosol_method = "MODAL" ;<br> HNO3_natsize7:aerosol_mode = "0" ;<br> HNO3_natsize7:aerosol_sol = "ON" ;<br> HNO3_natsize7:aerosol_hetice = "OFF" ;<br> HNO3_natsize7:hori_diff = "OFF" ;<br> HNO3_natsize7:relaxation = "FULL" ;<br> HNO3_natsize7:mmd_init = "OFF" ;<br> HNO3_natsize7:tag_reg_idt = "172" ;<br> HNO3_natsize7:tag_specific = "0" ;<br> HNO3_natsize7:initial\ type = "FILE" ;<br> HNO3_natsize7:lateral_bounds = "FILE" ;<br> HNO3_natsize7:damping = "ON" ;<br> HNO3_natsize7:grib\ table\ num = "-1" ;<br> HNO3_natsize7:grib\ param\ num = "-1" ;<br> HNO3_natsize7:mtskip = "OFF" ;<br> HNO3_natsize7:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize7:SPPT = "OFF" ;<br> HNO3_natsize7:blockphy = "OFF" ;<br> HNO3_natsize7:feedback = "ON" ;<br> HNO3_natsize7:molarmass = 63.02f ;<br> HNO3_natsize7:Henry_T0 = 163333.3f ;<br> HNO3_natsize7:Henry_Tdep = 8694.f ;<br> HNO3_natsize7:Sechenov = 9.99999f ;<br> HNO3_natsize7:alpha_T0 = 0.5f ;<br> HNO3_natsize7:alpha_Tdep = 0.f ;<br> HNO3_natsize7:K_acid = 15.4f ;<br> HNO3_natsize7:K_acid2 = 9.99999f ;<br> HNO3_natsize7:Vmol_bp = 9.99999f ;<br> HNO3_natsize7:psat = 9.99999f ;<br> HNO3_natsize7:psat_Tdep = 9.99999f ;<br> HNO3_natsize7:pss = 1.f ;<br> HNO3_natsize7:dryreac_sf = 1.f ;<br> HNO3_natsize7:aerosol_density = 1000.f ;<br> HNO3_natsize7:vini = 0.f ;<br> HNO3_natsize7:casrn = "7697-37-2" ;<br> HNO3_natsize7:aerosol_model = "" ;<br> HNO3_natsize7:REFERENCE_TO = "tracer_gp: HNO3_natsize7" ;<br> HNO3_natsize7:coordinates = "lon lat" ;<br> HNO3_natsize7:cell_methods = "time: point" ;<br> float HNO3_natsize7_ave(time, lev, lat, lon) ;<br> HNO3_natsize7_ave:long_name = "NAT in sizebin 7, HNO3 molar mixing ratio" ;<br> HNO3_natsize7_ave:standard_name = "" ;<br> HNO3_natsize7_ave:units = "mol/mol" ;<br> HNO3_natsize7_ave:submodel = "msbm" ;<br> HNO3_natsize7_ave:index = 172 ;<br> HNO3_natsize7_ave:medium = "AEROSOL" ;<br> HNO3_natsize7_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize7_ave:type = "SINGLE" ;<br> HNO3_natsize7_ave:number_of_timelevels = -1 ;<br> HNO3_natsize7_ave:charge = "UNDEFINED" ;<br> HNO3_natsize7_ave:advect = "ON" ;<br> HNO3_natsize7_ave:convect = "ON" ;<br> HNO3_natsize7_ave:vdiff = "ON" ;<br> HNO3_natsize7_ave:drydep = "OFF" ;<br> HNO3_natsize7_ave:sedi = "OFF" ;<br> HNO3_natsize7_ave:scav = "OFF" ;<br> HNO3_natsize7_ave:mix = "ON" ;<br> HNO3_natsize7_ave:force_col = "OFF" ;<br> HNO3_natsize7_ave:integrate = "ON" ;<br> HNO3_natsize7_ave:timefilter = "ON" ;<br> HNO3_natsize7_ave:force_init = "OFF" ;<br> HNO3_natsize7_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize7_ave:aerosol_mode = "0" ;<br> HNO3_natsize7_ave:aerosol_sol = "ON" ;<br> HNO3_natsize7_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize7_ave:hori_diff = "OFF" ;<br> HNO3_natsize7_ave:relaxation = "FULL" ;<br> HNO3_natsize7_ave:mmd_init = "OFF" ;<br> HNO3_natsize7_ave:tag_reg_idt = "172" ;<br> HNO3_natsize7_ave:tag_specific = "0" ;<br> HNO3_natsize7_ave:initial\ type = "FILE" ;<br> HNO3_natsize7_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize7_ave:damping = "ON" ;<br> HNO3_natsize7_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize7_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize7_ave:mtskip = "OFF" ;<br> HNO3_natsize7_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize7_ave:SPPT = "OFF" ;<br> HNO3_natsize7_ave:blockphy = "OFF" ;<br> HNO3_natsize7_ave:feedback = "ON" ;<br> HNO3_natsize7_ave:molarmass = 63.02f ;<br> HNO3_natsize7_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize7_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize7_ave:Sechenov = 9.99999f ;<br> HNO3_natsize7_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize7_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize7_ave:K_acid = 15.4f ;<br> HNO3_natsize7_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize7_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize7_ave:psat = 9.99999f ;<br> HNO3_natsize7_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize7_ave:pss = 1.f ;<br> HNO3_natsize7_ave:dryreac_sf = 1.f ;<br> HNO3_natsize7_ave:aerosol_density = 1000.f ;<br> HNO3_natsize7_ave:vini = 0.f ;<br> HNO3_natsize7_ave:casrn = "7697-37-2" ;<br> HNO3_natsize7_ave:aerosol_model = "" ;<br> HNO3_natsize7_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize7" ;<br> HNO3_natsize7_ave:coordinates = "lon lat" ;<br> HNO3_natsize7_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize8(time, lev, lat, lon) ;<br> HNO3_natsize8:long_name = "NAT in sizebin 8, HNO3 molar mixing ratio" ;<br> HNO3_natsize8:standard_name = "" ;<br> HNO3_natsize8:units = "mol/mol" ;<br> HNO3_natsize8:submodel = "msbm" ;<br> HNO3_natsize8:index = 173 ;<br> HNO3_natsize8:medium = "AEROSOL" ;<br> HNO3_natsize8:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize8:type = "SINGLE" ;<br> HNO3_natsize8:number_of_timelevels = -1 ;<br> HNO3_natsize8:charge = "UNDEFINED" ;<br> HNO3_natsize8:advect = "ON" ;<br> HNO3_natsize8:convect = "ON" ;<br> HNO3_natsize8:vdiff = "ON" ;<br> HNO3_natsize8:drydep = "OFF" ;<br> HNO3_natsize8:sedi = "OFF" ;<br> HNO3_natsize8:scav = "OFF" ;<br> HNO3_natsize8:mix = "ON" ;<br> HNO3_natsize8:force_col = "OFF" ;<br> HNO3_natsize8:integrate = "ON" ;<br> HNO3_natsize8:timefilter = "ON" ;<br> HNO3_natsize8:force_init = "OFF" ;<br> HNO3_natsize8:aerosol_method = "MODAL" ;<br> HNO3_natsize8:aerosol_mode = "0" ;<br> HNO3_natsize8:aerosol_sol = "ON" ;<br> HNO3_natsize8:aerosol_hetice = "OFF" ;<br> HNO3_natsize8:hori_diff = "OFF" ;<br> HNO3_natsize8:relaxation = "FULL" ;<br> HNO3_natsize8:mmd_init = "OFF" ;<br> HNO3_natsize8:tag_reg_idt = "173" ;<br> HNO3_natsize8:tag_specific = "0" ;<br> HNO3_natsize8:initial\ type = "FILE" ;<br> HNO3_natsize8:lateral_bounds = "FILE" ;<br> HNO3_natsize8:damping = "ON" ;<br> HNO3_natsize8:grib\ table\ num = "-1" ;<br> HNO3_natsize8:grib\ param\ num = "-1" ;<br> HNO3_natsize8:mtskip = "OFF" ;<br> HNO3_natsize8:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize8:SPPT = "OFF" ;<br> HNO3_natsize8:blockphy = "OFF" ;<br> HNO3_natsize8:feedback = "ON" ;<br> HNO3_natsize8:molarmass = 63.02f ;<br> HNO3_natsize8:Henry_T0 = 163333.3f ;<br> HNO3_natsize8:Henry_Tdep = 8694.f ;<br> HNO3_natsize8:Sechenov = 9.99999f ;<br> HNO3_natsize8:alpha_T0 = 0.5f ;<br> HNO3_natsize8:alpha_Tdep = 0.f ;<br> HNO3_natsize8:K_acid = 15.4f ;<br> HNO3_natsize8:K_acid2 = 9.99999f ;<br> HNO3_natsize8:Vmol_bp = 9.99999f ;<br> HNO3_natsize8:psat = 9.99999f ;<br> HNO3_natsize8:psat_Tdep = 9.99999f ;<br> HNO3_natsize8:pss = 1.f ;<br> HNO3_natsize8:dryreac_sf = 1.f ;<br> HNO3_natsize8:aerosol_density = 1000.f ;<br> HNO3_natsize8:vini = 0.f ;<br> HNO3_natsize8:casrn = "7697-37-2" ;<br> HNO3_natsize8:aerosol_model = "" ;<br> HNO3_natsize8:REFERENCE_TO = "tracer_gp: HNO3_natsize8" ;<br> HNO3_natsize8:coordinates = "lon lat" ;<br> HNO3_natsize8:cell_methods = "time: point" ;<br> float HNO3_natsize8_ave(time, lev, lat, lon) ;<br> HNO3_natsize8_ave:long_name = "NAT in sizebin 8, HNO3 molar mixing ratio" ;<br> HNO3_natsize8_ave:standard_name = "" ;<br> HNO3_natsize8_ave:units = "mol/mol" ;<br> HNO3_natsize8_ave:submodel = "msbm" ;<br> HNO3_natsize8_ave:index = 173 ;<br> HNO3_natsize8_ave:medium = "AEROSOL" ;<br> HNO3_natsize8_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize8_ave:type = "SINGLE" ;<br> HNO3_natsize8_ave:number_of_timelevels = -1 ;<br> HNO3_natsize8_ave:charge = "UNDEFINED" ;<br> HNO3_natsize8_ave:advect = "ON" ;<br> HNO3_natsize8_ave:convect = "ON" ;<br> HNO3_natsize8_ave:vdiff = "ON" ;<br> HNO3_natsize8_ave:drydep = "OFF" ;<br> HNO3_natsize8_ave:sedi = "OFF" ;<br> HNO3_natsize8_ave:scav = "OFF" ;<br> HNO3_natsize8_ave:mix = "ON" ;<br> HNO3_natsize8_ave:force_col = "OFF" ;<br> HNO3_natsize8_ave:integrate = "ON" ;<br> HNO3_natsize8_ave:timefilter = "ON" ;<br> HNO3_natsize8_ave:force_init = "OFF" ;<br> HNO3_natsize8_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize8_ave:aerosol_mode = "0" ;<br> HNO3_natsize8_ave:aerosol_sol = "ON" ;<br> HNO3_natsize8_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize8_ave:hori_diff = "OFF" ;<br> HNO3_natsize8_ave:relaxation = "FULL" ;<br> HNO3_natsize8_ave:mmd_init = "OFF" ;<br> HNO3_natsize8_ave:tag_reg_idt = "173" ;<br> HNO3_natsize8_ave:tag_specific = "0" ;<br> HNO3_natsize8_ave:initial\ type = "FILE" ;<br> HNO3_natsize8_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize8_ave:damping = "ON" ;<br> HNO3_natsize8_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize8_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize8_ave:mtskip = "OFF" ;<br> HNO3_natsize8_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize8_ave:SPPT = "OFF" ;<br> HNO3_natsize8_ave:blockphy = "OFF" ;<br> HNO3_natsize8_ave:feedback = "ON" ;<br> HNO3_natsize8_ave:molarmass = 63.02f ;<br> HNO3_natsize8_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize8_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize8_ave:Sechenov = 9.99999f ;<br> HNO3_natsize8_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize8_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize8_ave:K_acid = 15.4f ;<br> HNO3_natsize8_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize8_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize8_ave:psat = 9.99999f ;<br> HNO3_natsize8_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize8_ave:pss = 1.f ;<br> HNO3_natsize8_ave:dryreac_sf = 1.f ;<br> HNO3_natsize8_ave:aerosol_density = 1000.f ;<br> HNO3_natsize8_ave:vini = 0.f ;<br> HNO3_natsize8_ave:casrn = "7697-37-2" ;<br> HNO3_natsize8_ave:aerosol_model = "" ;<br> HNO3_natsize8_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize8" ;<br> HNO3_natsize8_ave:coordinates = "lon lat" ;<br> HNO3_natsize8_ave:cell_methods = "time: mean" ;<br> float HNO3_natsize9(time, lev, lat, lon) ;<br> HNO3_natsize9:long_name = "NAT in sizebin 9, HNO3 molar mixing ratio" ;<br> HNO3_natsize9:standard_name = "" ;<br> HNO3_natsize9:units = "mol/mol" ;<br> HNO3_natsize9:submodel = "msbm" ;<br> HNO3_natsize9:index = 174 ;<br> HNO3_natsize9:medium = "AEROSOL" ;<br> HNO3_natsize9:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize9:type = "SINGLE" ;<br> HNO3_natsize9:number_of_timelevels = -1 ;<br> HNO3_natsize9:charge = "UNDEFINED" ;<br> HNO3_natsize9:advect = "ON" ;<br> HNO3_natsize9:convect = "ON" ;<br> HNO3_natsize9:vdiff = "ON" ;<br> HNO3_natsize9:drydep = "OFF" ;<br> HNO3_natsize9:sedi = "OFF" ;<br> HNO3_natsize9:scav = "OFF" ;<br> HNO3_natsize9:mix = "ON" ;<br> HNO3_natsize9:force_col = "OFF" ;<br> HNO3_natsize9:integrate = "ON" ;<br> HNO3_natsize9:timefilter = "ON" ;<br> HNO3_natsize9:force_init = "OFF" ;<br> HNO3_natsize9:aerosol_method = "MODAL" ;<br> HNO3_natsize9:aerosol_mode = "0" ;<br> HNO3_natsize9:aerosol_sol = "ON" ;<br> HNO3_natsize9:aerosol_hetice = "OFF" ;<br> HNO3_natsize9:hori_diff = "OFF" ;<br> HNO3_natsize9:relaxation = "FULL" ;<br> HNO3_natsize9:mmd_init = "OFF" ;<br> HNO3_natsize9:tag_reg_idt = "174" ;<br> HNO3_natsize9:tag_specific = "0" ;<br> HNO3_natsize9:initial\ type = "FILE" ;<br> HNO3_natsize9:lateral_bounds = "FILE" ;<br> HNO3_natsize9:damping = "ON" ;<br> HNO3_natsize9:grib\ table\ num = "-1" ;<br> HNO3_natsize9:grib\ param\ num = "-1" ;<br> HNO3_natsize9:mtskip = "OFF" ;<br> HNO3_natsize9:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize9:SPPT = "OFF" ;<br> HNO3_natsize9:blockphy = "OFF" ;<br> HNO3_natsize9:feedback = "ON" ;<br> HNO3_natsize9:molarmass = 63.02f ;<br> HNO3_natsize9:Henry_T0 = 163333.3f ;<br> HNO3_natsize9:Henry_Tdep = 8694.f ;<br> HNO3_natsize9:Sechenov = 9.99999f ;<br> HNO3_natsize9:alpha_T0 = 0.5f ;<br> HNO3_natsize9:alpha_Tdep = 0.f ;<br> HNO3_natsize9:K_acid = 15.4f ;<br> HNO3_natsize9:K_acid2 = 9.99999f ;<br> HNO3_natsize9:Vmol_bp = 9.99999f ;<br> HNO3_natsize9:psat = 9.99999f ;<br> HNO3_natsize9:psat_Tdep = 9.99999f ;<br> HNO3_natsize9:pss = 1.f ;<br> HNO3_natsize9:dryreac_sf = 1.f ;<br> HNO3_natsize9:aerosol_density = 1000.f ;<br> HNO3_natsize9:vini = 0.f ;<br> HNO3_natsize9:casrn = "7697-37-2" ;<br> HNO3_natsize9:aerosol_model = "" ;<br> HNO3_natsize9:REFERENCE_TO = "tracer_gp: HNO3_natsize9" ;<br> HNO3_natsize9:coordinates = "lon lat" ;<br> HNO3_natsize9:cell_methods = "time: point" ;<br> float HNO3_natsize9_ave(time, lev, lat, lon) ;<br> HNO3_natsize9_ave:long_name = "NAT in sizebin 9, HNO3 molar mixing ratio" ;<br> HNO3_natsize9_ave:standard_name = "" ;<br> HNO3_natsize9_ave:units = "mol/mol" ;<br> HNO3_natsize9_ave:submodel = "msbm" ;<br> HNO3_natsize9_ave:index = 174 ;<br> HNO3_natsize9_ave:medium = "AEROSOL" ;<br> HNO3_natsize9_ave:quantity = "AMOUNTFRACTION" ;<br> HNO3_natsize9_ave:type = "SINGLE" ;<br> HNO3_natsize9_ave:number_of_timelevels = -1 ;<br> HNO3_natsize9_ave:charge = "UNDEFINED" ;<br> HNO3_natsize9_ave:advect = "ON" ;<br> HNO3_natsize9_ave:convect = "ON" ;<br> HNO3_natsize9_ave:vdiff = "ON" ;<br> HNO3_natsize9_ave:drydep = "OFF" ;<br> HNO3_natsize9_ave:sedi = "OFF" ;<br> HNO3_natsize9_ave:scav = "OFF" ;<br> HNO3_natsize9_ave:mix = "ON" ;<br> HNO3_natsize9_ave:force_col = "OFF" ;<br> HNO3_natsize9_ave:integrate = "ON" ;<br> HNO3_natsize9_ave:timefilter = "ON" ;<br> HNO3_natsize9_ave:force_init = "OFF" ;<br> HNO3_natsize9_ave:aerosol_method = "MODAL" ;<br> HNO3_natsize9_ave:aerosol_mode = "0" ;<br> HNO3_natsize9_ave:aerosol_sol = "ON" ;<br> HNO3_natsize9_ave:aerosol_hetice = "OFF" ;<br> HNO3_natsize9_ave:hori_diff = "OFF" ;<br> HNO3_natsize9_ave:relaxation = "FULL" ;<br> HNO3_natsize9_ave:mmd_init = "OFF" ;<br> HNO3_natsize9_ave:tag_reg_idt = "174" ;<br> HNO3_natsize9_ave:tag_specific = "0" ;<br> HNO3_natsize9_ave:initial\ type = "FILE" ;<br> HNO3_natsize9_ave:lateral_bounds = "FILE" ;<br> HNO3_natsize9_ave:damping = "ON" ;<br> HNO3_natsize9_ave:grib\ table\ num = "-1" ;<br> HNO3_natsize9_ave:grib\ param\ num = "-1" ;<br> HNO3_natsize9_ave:mtskip = "OFF" ;<br> HNO3_natsize9_ave:bot_bound_cond = "ZERO FLUX" ;<br> HNO3_natsize9_ave:SPPT = "OFF" ;<br> HNO3_natsize9_ave:blockphy = "OFF" ;<br> HNO3_natsize9_ave:feedback = "ON" ;<br> HNO3_natsize9_ave:molarmass = 63.02f ;<br> HNO3_natsize9_ave:Henry_T0 = 163333.3f ;<br> HNO3_natsize9_ave:Henry_Tdep = 8694.f ;<br> HNO3_natsize9_ave:Sechenov = 9.99999f ;<br> HNO3_natsize9_ave:alpha_T0 = 0.5f ;<br> HNO3_natsize9_ave:alpha_Tdep = 0.f ;<br> HNO3_natsize9_ave:K_acid = 15.4f ;<br> HNO3_natsize9_ave:K_acid2 = 9.99999f ;<br> HNO3_natsize9_ave:Vmol_bp = 9.99999f ;<br> HNO3_natsize9_ave:psat = 9.99999f ;<br> HNO3_natsize9_ave:psat_Tdep = 9.99999f ;<br> HNO3_natsize9_ave:pss = 1.f ;<br> HNO3_natsize9_ave:dryreac_sf = 1.f ;<br> HNO3_natsize9_ave:aerosol_density = 1000.f ;<br> HNO3_natsize9_ave:vini = 0.f ;<br> HNO3_natsize9_ave:casrn = "7697-37-2" ;<br> HNO3_natsize9_ave:aerosol_model = "" ;<br> HNO3_natsize9_ave:REFERENCE_TO = "tracer_gp: HNO3_natsize9" ;<br> HNO3_natsize9_ave:coordinates = "lon lat" ;<br> HNO3_natsize9_ave:cell_methods = "time: mean" ;<br> double time_bnds(time, tbnds) ;<br> time_bnds:long_name = "time bounds" ;<br> time_bnds:units = "days since 2000-01-01T00:00:00Z" ;<br> time_bnds:cell_methods = "time: point" ;</p> <p>// global attributes:<br> :MESSy = "MESSy version d2.55.2-1452-gfac3f76bd-dirty_fac3f76bd1a15841e8ee3f25f196108f3100d730_2022-06-30T17:09:28+02:00_2023-12-05T04:50:14+01:00, http://www.messy-interface.org" ;<br> :MESSy_switch = "version 1.0" ;<br> :MESSy_channel = "version 2.4.4" ;<br> :MESSy_tracer = "version 2.6" ;<br> :MESSy_timer = "version 0.1" ;<br> :MESSy_qtimer = "version 3.0" ;<br> :MESSy_import = "version 1.0" ;<br> :MESSy_grid = "version v1.5" ;<br> :MESSy_rnd = "version 1.1" ;<br> :MESSy_aeropt = "version 2.0.2" ;<br> :MESSy_airsea = "version 2.0" ;<br> :MESSy_ch4 = "version 1.3" ;<br> :MESSy_cloud = "version 2.2" ;<br> :MESSy_cloudopt = "version 2.2" ;<br> :MESSy_contrail = "version 1.1" ;<br> :MESSy_convect = "version 2.0" ;<br> :MESSy_cvtrans = "version 2.4" ;<br> :MESSy_ddep = "version 2.1.1" ;<br> :MESSy_dradon = "version 3.1" ;<br> :MESSy_gwave = "version 1.0" ;<br> :MESSy_jval = "version 14.3" ;<br> :MESSy_lnox = "version 3.0" ;<br> :MESSy_sprite = "version 1.0" ;<br> :MESSy_mecca = "version 4.4.0.m1" ;<br> :MESSy_msbm = "version 2.5" ;<br> :MESSy_o3orig = "version 0.2" ;<br> :MESSy_offemis = "version 1.0" ;<br> :MESSy_onemis = "version 3.0.0" ;<br> :MESSy_orbit = "version 0.9" ;<br> :MESSy_orogw = "version 1.1" ;<br> :MESSy_ptrac = "version 3.1" ;<br> :MESSy_qbo = "version 2.3" ;<br> :MESSy_rad = "version 2.3" ;<br> :MESSy_satsims = "version 1.0" ;<br> :MESSy_scalc = "version 1.10" ;<br> :MESSy_scav = "version 2.4.0" ;<br> :MESSy_scout = "version 2.1" ;<br> :MESSy_sedi = "version 2.5" ;<br> :MESSy_sorbit = "version 1.2" ;<br> :MESSy_e5vdiff = "version 1.2" ;<br> :MESSy_surface = "version 1.2" ;<br> :MESSy_tbudget = "version 1.1" ;<br> :MESSy_tnudge = "version 3.2" ;<br> :MESSy_trexp = "version 4.1" ;<br> :MESSy_tropop = "version 2.2" ;<br> :MESSy_viso = "version 2.3" ;<br> :MESSy_experiment = "SPRI_2" ;<br> :EXEC_CHECKSUM = "c7b317493c4d13720b2b4960b8b70d11 bin/echam5.exe (md5sum)" ;<br> :GCM = "ECHAM5 version 5.3.02, Max-Planck Institute for Meteorology, Hamburg" ;<br> :GCM_spherical_trunc_n = 42 ;<br> :GCM_spherical_trunc_m = 42 ;<br> :GCM_spherical_trunc_k = 42 ;<br> :GCM_vertical_mode = "middle atmosphere (MA)" ;<br> :GCM_horizontal_mode = "global" ;<br> :GCM_advection = "Lin&Rood" ;<br> :GCM_start_date_time = "20000101 000000" ;<br> :GCM_timestep = 720.f ;<br> :F95_COMPILER_VERSION = "GNU Fortran (GCC) 11.2.0" ;<br> :F95_COMPILER_CALL = "/dragofs/sw/foss/0.2/software/OpenMPI/4.1.1-GCC-11.2.0/bin/mpif90" ;<br> :F95_COMPILER_FLAGS = "-g -fbacktrace -cpp -D__linux__ -fno-second-underscore -ffree-line-length-none -fno-range-check -O3" ;<br> :F95_PREPROC_DEFINITIONS = "-DMESSY -DLITTLE_ENDIAN -D_LINUX64 -DPNCREGRID -DMPIOM_13B -D_VCSREV_=\'d2.55.2-1452-gfac3f76bd-dirty_fac3f76bd1a15841e8ee3f25f196108f3100d730_2022-06-30T17:09:28+02:00_2023-12-05T04:50:14+01:00\'" ;<br> :F95_COMPILER_INCLUDES_01 = "-I/dragofs/sw/foss/0.2/software/netCDF-Fortran/4.5.3-gompi-2021b/include -I/dragofs/sw/foss/0.2/software/netCDF/4.8.1-gompi-2021b/include -DgFortran -I/dragofs/sw/foss/0.2/software/netCDF-Fortran/4.5.3-gompi-2021b/include -I/dragofs/sw/foss/0.2/software/ne" ;<br> :F95_COMPILER_INCLUDES_02 = "tCDF-Fortran/4.5.3-gompi-2021b/include" ;<br> :operating_date_time = "20240105 113900" ;<br> :operating_system = "Linux 4.18.0-348.12.2.el8_5.x86_64 on x86_64" ;<br> :operating_host = "drago31060196" ;<br> :operating_user = "fjperez (fjperez)" ;<br> :MESSy_mecca_eqn = "gas.eqn" ;<br> :MESSy_mecca_bat = "CCMI2-base-02.bat" ;<br> :MESSy_mecca_rpl = "mim1-CCMI2-base-02" ;<br> :MESSy_mecca_nism = "(((Tr && (G || Het) && !I) || St) && !Hg)" ;<br> :MESSy_mecca_diag = "CCMI2-base-02" ;<br> :channel_io_pe = 0 ;<br> :channel_time_slo = 5355360.f ;<br> :channel_name = "tr_NOx_NOy_m" ;<br> :channel_file_type = "output" ;<br> :channel_file_name = "SPRI_2_________20010101_0000_tr_NOx_NOy_m.nc" ;<br> :channel_netcdf_lib = "4.8.1 of May 6 2022 16:22:26 $" ;</p> <p> </p>
Supporting Data for Figures in "Localized, tidal energy extraction in Puget Sound can adjust estuary resonance and friction, modifying barotropic tides system-wide"
<p>Supporting data for figures in "Localized, tidal energy extraction in Puget Sound can adjust estuary resonance and friction, modifying barotropic tides system-wide" by Preston S. Spicer, Parker MacCready, and Zhaoqing Yang. The manuscript is being considered for publication in Journal of Geophysical Research: Oceans (2024). The article analyzes the effect of a tidal turbine farm on incident and reflected tidal energy fluxes in the Salish Sea. Files are in MATLAB data and .m format with some .txt and shape files. Files named figX.m create the corresponding Figure X using provided .mat and other files. Variable names and units correspond to graphed data of each figure in the journal article.</p>
Data Extracted for the Systematic Literature Review on Non-profit Open data Intermediaries and their effects on Open data Usability Barriers
<p>The dataset contains the data extracted from the literature for the Systematic Literature Review and is referenced or used in the extended abstract titled "How do Non-profit Open data Intermediaries enhance Open data Usability? A Systematic Literature Review", submitted to the 18th International Symposium on Open Collaboration (Companion), September 6–10, 2022, Madrid, Spain. <a href="https://doi.org/10.1145/3555051.3555061" target="_blank" rel="noopener">https://doi.org/10.1145/3555051.3555061</a> </p>
Monthly averaged lightning data extracted from 1-year EMAC simulation including LCC-lightning (between 1 March, 2017 and 28 February, 2018, T42L90MA resolution).
<p>About Dataset<br> Monthly averaged lightning data extracted from 1-year EMAC simulation (between 1 March, 2017 and 28 February, 2018, T42L90MA resolution).</p> <p>Authors: Francisco J. Perez-Invernon, Heidi Huntrieser, Patrick Joeckel and Francisco J. Gordillo-Vazquez</p> <p>Description of the data<br> P_cth.tar: Lightning parameterization based on cloud top height. Scaling factor is applied.<br> L_cth.tar: Lightning parameterization based on cloud top height and modified over the oceans. A scaling factor of 0.571 have to be applied.<br> G_updr: Lightning parameterization based on updraft velocity. Scaling factor is applied.<br> A_prec: Lightning parameterization based on convective precipitation. A scaling factor of 0.76 have to be applied.<br> A_updr: Lightning parameterization based on Updraft strength at 440~hPa. A scaling factor of 0.01618 have to be applied.<br> P_cth + A_prec: Lightning parameterization based on cloud top height and updraft velocity. A scaling factor of 1.13 have to be applied.</p> <p>File format: netcdf</p> <p> Example:<br> <br> netcdf LCC_2017_______20170201_0000_mmlb_PaR_T {<br> dimensions:<br> time = UNLIMITED ; // (1 currently)<br> lon = 128 ;<br> lat = 64 ;<br> tbnds = 2 ;<br> variables:<br> double time(time) ;<br> time:long_name = "time" ;<br> time:bounds = "time_bnds" ;<br> time:units = "day since 2017-01-01 00:00:00" ;<br> time:calendar = "gregorian" ;<br> double YYYYMMDD(time) ;<br> YYYYMMDD:long_name = "time" ;<br> YYYYMMDD:units = "days as %Y%m%d.%f" ;<br> YYYYMMDD:calendar = "gregorian" ;<br> double dt(time) ;<br> dt:long_name = "delta_time" ;<br> dt:units = "s" ;<br> double nstep(time) ;<br> nstep:long_name = "current time step" ;<br> float lon(lon) ;<br> lon:long_name = "longitude" ;<br> lon:units = "degrees_east" ;<br> float lat(lat) ;<br> lat:long_name = "latitude" ;<br> lat:units = "degrees_north" ;<br> float aps(time, lat, lon) ;<br> aps:long_name = "surface pressure" ;<br> aps:units = "Pa" ;<br> aps:representation = "GP_2D_HORIZONTAL" ;<br> aps:grid_type = "gaussian" ;<br> aps:table = 128 ;<br> aps:code = 134 ;<br> aps:REFERENCE_TO = "g3b: aps" ;<br> aps:coordinates = "lon lat" ;<br> aps:cell_methods = "time: point" ;<br> float aps_ave(time, lat, lon) ;<br> aps_ave:long_name = "surface pressure" ;<br> aps_ave:units = "Pa" ;<br> aps_ave:representation = "GP_2D_HORIZONTAL" ;<br> aps_ave:grid_type = "gaussian" ;<br> aps_ave:table = 128 ;<br> aps_ave:code = 134 ;<br> aps_ave:REFERENCE_TO = "g3b: aps" ;<br> aps_ave:coordinates = "lon lat" ;<br> aps_ave:cell_methods = "time: mean" ;<br> float fpscg(time, lat, lon) ;<br> fpscg:long_name = "CG flash frequency" ;<br> fpscg:units = "1/s" ;<br> fpscg:REFERENCE_TO = "lnox_PaR_T_gp: fpscg" ;<br> fpscg:coordinates = "lon lat" ;<br> fpscg:cell_methods = "time: point" ;<br> float fpscg_ave(time, lat, lon) ;<br> fpscg_ave:long_name = "CG flash frequency" ;<br> fpscg_ave:units = "1/s" ;<br> fpscg_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpscg" ;<br> fpscg_ave:coordinates = "lon lat" ;<br> fpscg_ave:cell_methods = "time: mean" ;<br> float fpsic(time, lat, lon) ;<br> fpsic:long_name = "IC flash frequency" ;<br> fpsic:units = "1/s" ;<br> fpsic:REFERENCE_TO = "lnox_PaR_T_gp: fpsic" ;<br> fpsic:coordinates = "lon lat" ;<br> fpsic:cell_methods = "time: point" ;<br> float fpsic_ave(time, lat, lon) ;<br> fpsic_ave:long_name = "IC flash frequency" ;<br> fpsic_ave:units = "1/s" ;<br> fpsic_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpsic" ;<br> fpsic_ave:coordinates = "lon lat" ;<br> fpsic_ave:cell_methods = "time: mean" ;<br> float fpsm2cg(time, lat, lon) ;<br> fpsm2cg:long_name = "CG flash density" ;<br> fpsm2cg:units = "1/s/m2" ;<br> fpsm2cg:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2cg" ;<br> fpsm2cg:coordinates = "lon lat" ;<br> fpsm2cg:cell_methods = "time: point" ;<br> float fpsm2cg_ave(time, lat, lon) ;<br> fpsm2cg_ave:long_name = "CG flash density" ;<br> fpsm2cg_ave:units = "1/s/m2" ;<br> fpsm2cg_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2cg" ;<br> fpsm2cg_ave:coordinates = "lon lat" ;<br> fpsm2cg_ave:cell_methods = "time: mean" ;<br> float fpsm2ic(time, lat, lon) ;<br> fpsm2ic:long_name = "IC flash density" ;<br> fpsm2ic:units = "1/s/m2" ;<br> fpsm2ic:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2ic" ;<br> fpsm2ic:coordinates = "lon lat" ;<br> fpsm2ic:cell_methods = "time: point" ;<br> float fpsm2ic_ave(time, lat, lon) ;<br> fpsm2ic_ave:long_name = "IC flash density" ;<br> fpsm2ic_ave:units = "1/s/m2" ;<br> fpsm2ic_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2ic" ;<br> fpsm2ic_ave:coordinates = "lon lat" ;<br> fpsm2ic_ave:cell_methods = "time: mean" ;<br> float fpslcc10(time, lat, lon) ;<br> fpslcc10:long_name = "LCC(>10 ms) flash frequency" ;<br> fpslcc10:units = "1/s" ;<br> fpslcc10:REFERENCE_TO = "lnox_PaR_T_gp: fpslcc10" ;<br> fpslcc10:coordinates = "lon lat" ;<br> fpslcc10:cell_methods = "time: point" ;<br> float fpslcc10_ave(time, lat, lon) ;<br> fpslcc10_ave:long_name = "LCC(>10 ms) flash frequency" ;<br> fpslcc10_ave:units = "1/s" ;<br> fpslcc10_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpslcc10" ;<br> fpslcc10_ave:coordinates = "lon lat" ;<br> fpslcc10_ave:cell_methods = "time: mean" ;<br> float fpslcc20(time, lat, lon) ;<br> fpslcc20:long_name = "LCC(>20 ms) flash frequency" ;<br> fpslcc20:units = "1/s" ;<br> fpslcc20:REFERENCE_TO = "lnox_PaR_T_gp: fpslcc20" ;<br> fpslcc20:coordinates = "lon lat" ;<br> fpslcc20:cell_methods = "time: point" ;<br> float fpslcc20_ave(time, lat, lon) ;<br> fpslcc20_ave:long_name = "LCC(>20 ms) flash frequency" ;<br> fpslcc20_ave:units = "1/s" ;<br> fpslcc20_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpslcc20" ;<br> fpslcc20_ave:coordinates = "lon lat" ;<br> fpslcc20_ave:cell_methods = "time: mean" ;<br> float fpsm2lcc10(time, lat, lon) ;<br> fpsm2lcc10:long_name = "LCC(>10 ms) flash density" ;<br> fpsm2lcc10:units = "1/s/m2" ;<br> fpsm2lcc10:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2lcc10" ;<br> fpsm2lcc10:coordinates = "lon lat" ;<br> fpsm2lcc10:cell_methods = "time: point" ;<br> float fpsm2lcc10_ave(time, lat, lon) ;<br> fpsm2lcc10_ave:long_name = "LCC(>10 ms) flash density" ;<br> fpsm2lcc10_ave:units = "1/s/m2" ;<br> fpsm2lcc10_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2lcc10" ;<br> fpsm2lcc10_ave:coordinates = "lon lat" ;<br> fpsm2lcc10_ave:cell_methods = "time: mean" ;<br> float fpsm2lcc20(time, lat, lon) ;<br> fpsm2lcc20:long_name = "LCC(>20 ms) flash density" ;<br> fpsm2lcc20:units = "1/s/m2" ;<br> fpsm2lcc20:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2lcc20" ;<br> fpsm2lcc20:coordinates = "lon lat" ;<br> fpsm2lcc20:cell_methods = "time: point" ;<br> float fpsm2lcc20_ave(time, lat, lon) ;<br> fpsm2lcc20_ave:long_name = "LCC(>20 ms) flash density" ;<br> fpsm2lcc20_ave:units = "1/s/m2" ;<br> fpsm2lcc20_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2lcc20" ;<br> fpsm2lcc20_ave:coordinates = "lon lat" ;<br> fpsm2lcc20_ave:cell_methods = "time: mean" ;<br> float fpssprite(time, lat, lon) ;<br> fpssprite:long_name = "Sprites flash frequency" ;<br> fpssprite:units = "1/s" ;<br> fpssprite:REFERENCE_TO = "lnox_PaR_T_gp: fpssprite" ;<br> fpssprite:coordinates = "lon lat" ;<br> fpssprite:cell_methods = "time: point" ;<br> float fpssprite_ave(time, lat, lon) ;<br> fpssprite_ave:long_name = "Sprites flash frequency" ;<br> fpssprite_ave:units = "1/s" ;<br> fpssprite_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpssprite" ;<br> fpssprite_ave:coordinates = "lon lat" ;<br> fpssprite_ave:cell_methods = "time: mean" ;<br> float fpsm2sprite(time, lat, lon) ;<br> fpsm2sprite:long_name = "Sprites flash density" ;<br> fpsm2sprite:units = "1/s/m2" ;<br> fpsm2sprite:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2sprite" ;<br> fpsm2sprite:coordinates = "lon lat" ;<br> fpsm2sprite:cell_methods = "time: point" ;<br> float fpsm2sprite_ave(time, lat, lon) ;<br> fpsm2sprite_ave:long_name = "Sprites flash density" ;<br> fpsm2sprite_ave:units = "1/s/m2" ;<br> fpsm2sprite_ave:REFERENCE_TO = "lnox_PaR_T_gp: fpsm2sprite" ;<br> fpsm2sprite_ave:coordinates = "lon lat" ;<br> fpsm2sprite_ave:cell_methods = "time: mean" ;<br> float bps(time, lat, lon) ;<br> bps:long_name = "BJ flash frequency" ;<br> bps:units = "1/s" ;<br> bps:REFERENCE_TO = "bluejetbPaR_T_gp: bps" ;<br> bps:coordinates = "lon lat" ;<br> bps:cell_methods = "time: point" ;<br> float bps_ave(time, lat, lon) ;<br> bps_ave:long_name = "BJ flash frequency" ;<br> bps_ave:units = "1/s" ;<br> bps_ave:REFERENCE_TO = "bluejetbPaR_T_gp: bps" ;<br> bps_ave:coordinates = "lon lat" ;<br> bps_ave:cell_methods = "time: mean" ;<br> float bpsm2(time, lat, lon) ;<br> bpsm2:long_name = "BJ flash density" ;<br> bpsm2:units = "1/s/m2" ;<br> bpsm2:REFERENCE_TO = "bluejetbPaR_T_gp: bpsm2" ;<br> bpsm2:coordinates = "lon lat" ;<br> bpsm2:cell_methods = "time: point" ;<br> float bpsm2_ave(time, lat, lon) ;<br> bpsm2_ave:long_name = "BJ flash density" ;<br> bpsm2_ave:units = "1/s/m2" ;<br> bpsm2_ave:REFERENCE_TO = "bluejetbPaR_T_gp: bpsm2" ;<br> bpsm2_ave:coordinates = "lon lat" ;<br> bpsm2_ave:cell_methods = "time: mean" ;<br> double time_bnds(time, tbnds) ;<br> time_bnds:long_name = "time bounds" ;<br> time_bnds:units = "days since 2017-01-01T00:00:00Z" ;<br> time_bnds:cell_methods = "time: point"</p>
Using convolutional neural networks to efficiently extract immense phenological data from community science images
<p>Community science image libraries offer a massive, but largely untapped, source of observational data for phenological research. The iNaturalist platform offers a particularly rich archive, containing more than 49 million verifiable, georeferenced, open access images, encompassing seven continents and over 278,000 species. A critical limitation preventing scientists from taking full advantage of this rich data source is labor. Each image must be manually inspected and categorized by phenophase, which is both time-intensive and costly. Consequently, researchers may only be able to use a subset of the total number of images available in the database. While iNaturalist has the potential to yield enough data for high-resolution and spatially extensive studies, it requires more efficient tools for phenological data extraction. A promising solution is automation of the image annotation process using deep learning. Recent innovations in deep learning have made these open-source tools accessible to a general research audience. However, it is unknown whether deep learning tools can accurately and efficiently annotate phenophases in community science images. Here, we train a convolutional neural network (CNN) to annotate images of Alliaria petiolata into distinct phenophases from iNaturalist and compare the performance of the model with non-expert human annotators. We demonstrate that researchers can successfully employ deep learning techniques to extract phenological information from community science images. A CNN classified two-stage phenology (flowering and non-flowering) with 95.9% accuracy and classified four-stage phenology (vegetative, budding, flowering, and fruiting) with 86.4% accuracy. The overall accuracy of the CNN did not differ from humans (p = 0.383), although performance varied across phenophases. We found that a primary challenge of using deep learning for image annotation was not related to the model itself, but instead in the quality of the community science images. Up to 4% of A. petiolata images in iNaturalist were taken from an improper distance, were physically manipulated, or were digitally altered, which limited both human and machine annotators in accurately classifying phenology. Thus, we provide a list of photography guidelines that could be included in community science platforms to inform community scientists in the best practices for creating images that facilitate phenological analysis.</p>
Raw data of compounds extracted by GC-MS from each population replicate's of I. uriae ticks from Iceland.
<p>Raw data representing all the compounds extracted by GC-MS from each population replicate’s of <em>I. uriae</em> ticks from three sites in Iceland. Each replicate contain a pool of 10 living flat female ticks.</p> <p>Site: name of the site where ticks were collected.</p> <p>Host: name of the host bird.</p> <p>Replicate: number of the replicate (1 to 4).</p> <p>Peak: number of the detected peaks correponding to extracted compounds.</p> <p>Retention Time: time elapsed between sample introduction and the maximum signal of the given compound.</p> <p>Area: area under the curves of each detected coumpounds on the chromatogram.</p>
Source data and code for: Existing fossil fuel extraction would warm the world beyond 1.5°C
<p>Source data and code for the study, "Existing fossil fuel extraction would warm the world beyond 1.5°C." Datasets 1-4 include mine-level data collected for China (Dataset 1), India (Dataset 2), and five other countries (Dataset 3) that are among the world's top nine coal producers - the United States, Indonesia, Australia, South Africa, and Poland. Dataset 4 includes global and country-level output data from the 1,000-run Monte Carlo simulation. <Committed_Reserves_Monte_Carlo_Input_Data.zip> includes data and code to replicate the Monte Carlo simulation.</p>
All raw data for Fukuzawa, T et al. "Environmental DNA extraction method for a high and stable DNA yield"
<p>The all raw data of quantitative PCR for environmental DNA in Fukuzawa, T et al. "Environmental DNA extraction method for a high and stable DNA yield".</p> <p> </p>
Monthly averaged lightning and LCC lightning data extracted from present-day (2009-2011) and projected (2090-2095) EMAC simulations (T42L90MA resolution)
<pre>About Dataset Monthly averaged lightning and LCC lightning data extracted from present-day (2009-2011) and projected (2090-2095) EMAC simulations (T42L90MA resolution). Authors: Francisco J. Perez-Invernon, Francisco J. Gordillo-Vazquez, Patrick Joeckel and Heidi Huntrieser Description of the data PaR_T: Lightning parameterization based on cloud top height. PaR_L: Lightning parameterization based on cloud top height and modified over the oceans. Grewe: Lightning parameterization based on updraft velocity. AaP_P: Lightning parameterization based on convective precipitation. A AaP_M: Lightning parameterization based on Updraft strength at 440~hPa. PRaAP: Lightning parameterization based on cloud top height and updraft velocity. FinIF: Lightning parameterization based on updraft mass flux of ice at 440 hPa. extIF: Lightning parameterization based on updraft mass flux of ice at 440 hPa an isotherm. File format: netcdf Example: netcdf </pre> <p>2009_10h_______20090701_0000_mmlb_PRaAP.nc<br> netcdf \2009_10h_______20090701_0000_mmlb_PRaAP {<br> dimensions:<br> time = UNLIMITED ; // (1 currently)<br> lon = 128 ;<br> lat = 64 ;<br> tbnds = 2 ;<br> variables:<br> double time(time) ;<br> time:long_name = "time" ;<br> time:bounds = "time_bnds" ;<br> time:units = "day since 2009-01-01 00:00:00" ;<br> time:calendar = "gregorian" ;<br> double YYYYMMDD(time) ;<br> YYYYMMDD:long_name = "time" ;<br> YYYYMMDD:units = "days as %Y%m%d.%f" ;<br> YYYYMMDD:calendar = "gregorian" ;<br> double dt(time) ;<br> dt:long_name = "delta_time" ;<br> dt:units = "s" ;<br> double nstep(time) ;<br> nstep:long_name = "current time step" ;<br> float lon(lon) ;<br> lon:long_name = "longitude" ;<br> lon:units = "degrees_east" ;<br> float lat(lat) ;<br> lat:long_name = "latitude" ;<br> lat:units = "degrees_north" ;<br> float aps(time, lat, lon) ;<br> aps:long_name = "surface pressure" ;<br> aps:units = "Pa" ;<br> aps:representation = "GP_2D_HORIZONTAL" ;<br> aps:grid_type = "gaussian" ;<br> aps:table = 128 ;<br> aps:code = 134 ;<br> aps:REFERENCE_TO = "g3b: aps" ;<br> aps:coordinates = "lon lat" ;<br> aps:cell_methods = "time: point" ;<br> float aps_ave(time, lat, lon) ;<br> aps_ave:long_name = "surface pressure" ;<br> aps_ave:units = "Pa" ;<br> aps_ave:representation = "GP_2D_HORIZONTAL" ;<br> aps_ave:grid_type = "gaussian" ;<br> aps_ave:table = 128 ;<br> aps_ave:code = 134 ;<br> aps_ave:REFERENCE_TO = "g3b: aps" ;<br> aps_ave:coordinates = "lon lat" ;<br> aps_ave:cell_methods = "time: mean" ;<br> float fpscg(time, lat, lon) ;<br> fpscg:long_name = "CG flash frequency" ;<br> fpscg:units = "1/s" ;<br> fpscg:REFERENCE_TO = "lnox_PRaAP_gp: fpscg" ;<br> fpscg:coordinates = "lon lat" ;<br> fpscg:cell_methods = "time: point" ;<br> float fpscg_ave(time, lat, lon) ;<br> fpscg_ave:long_name = "CG flash frequency" ;<br> fpscg_ave:units = "1/s" ;<br> fpscg_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpscg" ;<br> fpscg_ave:coordinates = "lon lat" ;<br> fpscg_ave:cell_methods = "time: mean" ;<br> float fpsic(time, lat, lon) ;<br> fpsic:long_name = "IC flash frequency" ;<br> fpsic:units = "1/s" ;<br> fpsic:REFERENCE_TO = "lnox_PRaAP_gp: fpsic" ;<br> fpsic:coordinates = "lon lat" ;<br> fpsic:cell_methods = "time: point" ;<br> float fpsic_ave(time, lat, lon) ;<br> fpsic_ave:long_name = "IC flash frequency" ;<br> fpsic_ave:units = "1/s" ;<br> fpsic_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpsic" ;<br> fpsic_ave:coordinates = "lon lat" ;<br> fpsic_ave:cell_methods = "time: mean" ;<br> float fpsm2cg(time, lat, lon) ;<br> fpsm2cg:long_name = "CG flash density" ;<br> fpsm2cg:units = "1/s/m2" ;<br> fpsm2cg:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2cg" ;<br> fpsm2cg:coordinates = "lon lat" ;<br> fpsm2cg:cell_methods = "time: point" ;<br> float fpsm2cg_ave(time, lat, lon) ;<br> fpsm2cg_ave:long_name = "CG flash density" ;<br> fpsm2cg_ave:units = "1/s/m2" ;<br> fpsm2cg_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2cg" ;<br> fpsm2cg_ave:coordinates = "lon lat" ;<br> fpsm2cg_ave:cell_methods = "time: mean" ;<br> float fpsm2ic(time, lat, lon) ;<br> fpsm2ic:long_name = "IC flash density" ;<br> fpsm2ic:units = "1/s/m2" ;<br> fpsm2ic:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2ic" ;<br> fpsm2ic:coordinates = "lon lat" ;<br> fpsm2ic:cell_methods = "time: point" ;<br> float fpsm2ic_ave(time, lat, lon) ;<br> fpsm2ic_ave:long_name = "IC flash density" ;<br> fpsm2ic_ave:units = "1/s/m2" ;<br> fpsm2ic_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2ic" ;<br> fpsm2ic_ave:coordinates = "lon lat" ;<br> fpsm2ic_ave:cell_methods = "time: mean" ;<br> float fpslcc10(time, lat, lon) ;<br> fpslcc10:long_name = "LCC(>10 ms) flash frequency" ;<br> fpslcc10:units = "1/s" ;<br> fpslcc10:REFERENCE_TO = "lnox_PRaAP_gp: fpslcc10" ;<br> fpslcc10:coordinates = "lon lat" ;<br> fpslcc10:cell_methods = "time: point" ;<br> float fpslcc10_ave(time, lat, lon) ;<br> fpslcc10_ave:long_name = "LCC(>10 ms) flash frequency" ;<br> fpslcc10_ave:units = "1/s" ;<br> fpslcc10_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpslcc10" ;<br> fpslcc10_ave:coordinates = "lon lat" ;<br> fpslcc10_ave:cell_methods = "time: mean" ;<br> float fpslcc20(time, lat, lon) ;<br> fpslcc20:long_name = "LCC(>20 ms) flash frequency" ;<br> fpslcc20:units = "1/s" ;<br> fpslcc20:REFERENCE_TO = "lnox_PRaAP_gp: fpslcc20" ;<br> fpslcc20:coordinates = "lon lat" ;<br> fpslcc20:cell_methods = "time: point" ;<br> float fpslcc20_ave(time, lat, lon) ;<br> fpslcc20_ave:long_name = "LCC(>20 ms) flash frequency" ;<br> fpslcc20_ave:units = "1/s" ;<br> fpslcc20_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpslcc20" ;<br> fpslcc20_ave:coordinates = "lon lat" ;<br> fpslcc20_ave:cell_methods = "time: mean" ;<br> float fpsm2lcc10(time, lat, lon) ;<br> fpsm2lcc10:long_name = "LCC(>10 ms) flash density" ;<br> fpsm2lcc10:units = "1/s/m2" ;<br> fpsm2lcc10:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2lcc10" ;<br> fpsm2lcc10:coordinates = "lon lat" ;<br> fpsm2lcc10:cell_methods = "time: point" ;<br> float fpsm2lcc10_ave(time, lat, lon) ;<br> fpsm2lcc10_ave:long_name = "LCC(>10 ms) flash density" ;<br> fpsm2lcc10_ave:units = "1/s/m2" ;<br> fpsm2lcc10_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2lcc10" ;<br> fpsm2lcc10_ave:coordinates = "lon lat" ;<br> fpsm2lcc10_ave:cell_methods = "time: mean" ;<br> float fpsm2lcc20(time, lat, lon) ;<br> fpsm2lcc20:long_name = "LCC(>20 ms) flash density" ;<br> fpsm2lcc20:units = "1/s/m2" ;<br> fpsm2lcc20:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2lcc20" ;<br> fpsm2lcc20:coordinates = "lon lat" ;<br> fpsm2lcc20:cell_methods = "time: point" ;<br> float fpsm2lcc20_ave(time, lat, lon) ;<br> fpsm2lcc20_ave:long_name = "LCC(>20 ms) flash density" ;<br> fpsm2lcc20_ave:units = "1/s/m2" ;<br> fpsm2lcc20_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2lcc20" ;<br> fpsm2lcc20_ave:coordinates = "lon lat" ;<br> fpsm2lcc20_ave:cell_methods = "time: mean" ;<br> float fpssprite(time, lat, lon) ;<br> fpssprite:long_name = "Sprites flash frequency" ;<br> fpssprite:units = "1/s" ;<br> fpssprite:REFERENCE_TO = "lnox_PRaAP_gp: fpssprite" ;<br> fpssprite:coordinates = "lon lat" ;<br> fpssprite:cell_methods = "time: point" ;<br> float fpssprite_ave(time, lat, lon) ;<br> fpssprite_ave:long_name = "Sprites flash frequency" ;<br> fpssprite_ave:units = "1/s" ;<br> fpssprite_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpssprite" ;<br> fpssprite_ave:coordinates = "lon lat" ;<br> fpssprite_ave:cell_methods = "time: mean" ;<br> float fpsm2sprite(time, lat, lon) ;<br> fpsm2sprite:long_name = "Sprites flash density" ;<br> fpsm2sprite:units = "1/s/m2" ;<br> fpsm2sprite:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2sprite" ;<br> fpsm2sprite:coordinates = "lon lat" ;<br> fpsm2sprite:cell_methods = "time: point" ;<br> float fpsm2sprite_ave(time, lat, lon) ;<br> fpsm2sprite_ave:long_name = "Sprites flash density" ;<br> fpsm2sprite_ave:units = "1/s/m2" ;<br> fpsm2sprite_ave:REFERENCE_TO = "lnox_PRaAP_gp: fpsm2sprite" ;<br> fpsm2sprite_ave:coordinates = "lon lat" ;<br> fpsm2sprite_ave:cell_methods = "time: mean" ;<br> float bps(time, lat, lon) ;<br> bps:long_name = "BJ flash frequency" ;<br> bps:units = "1/s" ;<br> bps:REFERENCE_TO = "bluejetbPRaAP_gp: bps" ;<br> bps:coordinates = "lon lat" ;<br> bps:cell_methods = "time: point" ;<br> float bps_ave(time, lat, lon) ;<br> bps_ave:long_name = "BJ flash frequency" ;<br> bps_ave:units = "1/s" ;<br> bps_ave:REFERENCE_TO = "bluejetbPRaAP_gp: bps" ;<br> bps_ave:coordinates = "lon lat" ;<br> bps_ave:cell_methods = "time: mean" ;<br> float bpsm2(time, lat, lon) ;<br> bpsm2:long_name = "BJ flash density" ;<br> bpsm2:units = "1/s/m2" ;<br> bpsm2:REFERENCE_TO = "bluejetbPRaAP_gp: bpsm2" ;<br> bpsm2:coordinates = "lon lat" ;<br> bpsm2:cell_methods = "time: point" ;<br> float bpsm2_ave(time, lat, lon) ;<br> bpsm2_ave:long_name = "BJ flash density" ;<br> bpsm2_ave:units = "1/s/m2" ;<br> bpsm2_ave:REFERENCE_TO = "bluejetbPRaAP_gp: bpsm2" ;<br> bpsm2_ave:coordinates = "lon lat" ;<br> bpsm2_ave:cell_methods = "time: mean" ;<br> double time_bnds(time, tbnds) ;<br> time_bnds:long_name = "time bounds" ;<br> time_bnds:units = "days since 2009-01-01T00:00:00Z" ;<br> time_bnds:cell_methods = "time: point" ;</p> <p>// global attributes:<br> :MESSy = "MESSy version d2.55.1-62-g7ea171fc6-dirty_7ea171fc682744f70976123b863cca166dd2023b_2021-05-19T16:21:08+00:00_2021-06-04T13:28:34+0200, http://www.messy-interface.org" ;<br> :MESSy_switch = "version 1.0" ;<br> :MESSy_channel = "version 2.4.3" ;<br> :MESSy_tracer = "version 2.6" ;<br> :MESSy_timer = "version 0.1" ;<br> :MESSy_qtimer = "version 3.0" ;<br> :MESSy_import = "version 1.0" ;<br> :MESSy_grid = "version v1.5" ;<br> :MESSy_rnd = "version 1.1" ;<br> :MESSy_aeropt = "version 2.0.2" ;<br> :MESSy_cloud = "version 2.2" ;<br> :MESSy_cloudopt = "version 2.1b" ;<br> :MESSy_convect = "version 2.0" ;<br> :MESSy_gwave = "version 1.0" ;<br> :MESSy_lnox = "version 3.0" ;<br> :MESSy_orbit = "version 0.9" ;<br> :MESSy_orogw = "version 1.1" ;<br> :MESSy_rad = "version 2.2" ;<br> :MESSy_e5vdiff = "version 1.2" ;<br> :MESSy_surface = "version 1.2" ;<br> :MESSy_tropop = "version 2.1" ;<br> :MESSy_viso = "version 2.3" ;<br> :MESSy_experiment = "2009_10h" ;<br> :EXEC_CHECKSUM = "45e5ddd17ae5992f931a9ba4bab4a921 bin/echam5.exe (md5sum)" ;<br> :GCM = "ECHAM5 version 5.3.02, Max-Planck Institute for Meteorology, Hamburg" ;<br> :GCM_spherical_trunc_n = 42 ;<br> :GCM_spherical_trunc_m = 42 ;<br> :GCM_spherical_trunc_k = 42 ;<br> :GCM_vertical_mode = "middle atmosphere (MA)" ;<br> :GCM_horizontal_mode = "global" ;<br> :GCM_advection = "Lin&Rood" ;<br> :GCM_start_date_time = "20090101 000000" ;<br> :GCM_timestep = 900.f ;<br> :F95_COMPILER_VERSION = "ifort (IFORT) 17.0.2 20170213" ;<br> :F95_COMPILER_CALL = "/opt/mpi/bullxmpi_mlx/1.2.9.2/bin/mpif90" ;<br> :F95_COMPILER_FLAGS = "-sox -fpp -g -O2 -xCORE-AVX2 -fp-model strict -align all -save-temps -DBULL -I/sw/rhel6-x64/sys/bullxlib-1.0.0/include -L/sw/rhel6-x64/sys/bullxlib-1.0.0/lib -Wl,-rpath,/sw/rhel6-x64/sys/bullxlib-1.0.0/lib -lbullxMATH -no-wrap-margin" ;<br> :F95_PREPROC_DEFINITIONS = "-DMESSY -DLITTLE_ENDIAN -D_LINUX64 -DHAVE_PNETCDF -DPNCREGRID -DMPIOM_13B -D_VCSREV_=\'d2.55.1-62-g7ea171fc6-dirty_7ea171fc682744f70976123b863cca166dd2023b_2021-05-19T16:21:08+00:00_2021-06-04T13:28:34+0200\'" ;<br> :F95_COMPILER_INCLUDES = "-I/sw/rhel6-x64/netcdf/netcdf_fortran-4.4.2-intel14/include -I/sw/rhel6-x64/netcdf/netcdf_fortran-4.4.2-intel14/include -I/sw/rhel6-x64/netcdf/parallel_netcdf-1.6.0-bullxmpi-intel14/include" ;<br> :operating_date_time = "20210615 081833" ;<br> :operating_system = "Linux 2.6.32-754.33.1.el6.x86_64 on x86_64" ;<br> :operating_host = "mlogin102" ;<br> :operating_user = "Francisco-Javier Perez-Invernon (b309171)" ;<br> :channel_io_pe = 172 ;<br> :channel_time_slo = 5182200.f ;<br> :channel_name = "mmlb_PRaAP" ;<br> :channel_file_type = "output" ;<br> :channel_file_name = "2009_10h_______20090701_0000_mmlb_PRaAP.nc" ;<br> :channel_netcdf_lib = "4.3.2 of May 5 2015 13:21:25 $" ;</p>
Intermediate data files from the compilation of Economy-wide Material Flow Accounts for the Domestic Extraction of abiotic materials
<p>These files represent a selection of intermediary files from the compilation of material flow accounts on Domestic Extraction (DE) of abiotic materials. The main output of this compilation has been integrated in the UNEP IRP Global Material Flow Database (GMFD).</p> <p>These files include input files (e.g. IDs for data harmonization, or factors for data conversion), as well as output files (e.g. supplementary information, or detailed data accounts before aggregation and integration into the GMFD).</p> <p>Please note: These files are published exclusively for the purpose of making this information available to interested parties in a transparent and orderly fashion, in particular to other research projects who may have use for it. Therefore, these files are not associated with any publication and have not been adjusted or formatted with regard to any publications standards, i.e. they are uploaded exactly as they have been processed in the respective R Github repository of the underlying data compilation.</p> <p>The following description attempts to give a short overview of the respective types of files and their contents. For more detailed information on the data compilation, please refer to chapters 6, 8, and 10 in the <a href="https://resourcepanel.org/sites/default/files/irp_technical_annex_global_material_flows_database.pdf">technical report</a> of the GMFD.</p> <p> </p> <p><strong>Main data output (i.e. detailed material flow accounts)</strong></p> <p><em>DE_met_min_fos_CCC_2021-11-04.csv</em>: Data aggregated to the official categories (CCC/TCCC) used for integration into the GMFD. With IDs, without names (e.g. for materials and countries).</p> <p><em>DE_met_min_fos_CCC_with_names_2021-11-04.csv</em>: Same as above, but with names.</p> <p><em>DE_met_min_fos_Detailed_2021-11-04.csv</em>: Detailed accounts, as compiled, before final aggregation. With IDs, without names.</p> <p><em>DE_met_min_fos_Detailed_with_names_2021-11-04.csv</em>: Same as above, but with names.</p> <p> </p> <p><em>DE_met_min_fos_Detailed_2022-05-24.csv: </em>Slightly revised version from May 2022. But not included in current GMFD version.</p> <p> </p> <p><strong>ID and concordance tables</strong></p> <p><em>ccc_vs_mat_ids.csv:</em> Concordance table for allocation of detailed material accounts to aggregated CCC accounts.</p> <p><em>country_ids.csv:</em> General ID table for country IDs and names</p> <p><em>estimated_ids.csv:</em> Material IDs which are assigned during application of ore estimation factors.</p> <p><em>geo_exist.csv:</em> Table for consistent geographic adjustment of data for specific countries which have disintegrated over time (not including regions like Germany, Yemen, Ethiopia, Sudan, which all have been dealt with individually if necessary).</p> <p><em>material_ids.csv:</em> General ID table for material IDs and names.</p> <p><em>source_country_ids.csv:</em> Concordance table for country IDs (i.e. for allocation of harmonized IDs to source namings/IDs)</p> <p><em>source_material_ids.csv:</em> Concordance table for material IDs (i.e. for allocation of harmonized IDs to source namings/IDs)</p> <p><em>source_unit_ids.csv:</em> Concordance table for unit IDs (i.e. for allocation of harmonized IDs to source namings/IDs)</p> <p><em>unit_ids.csv:</em> General ID table for unit IDs and names.</p> <p> </p> <p><strong>Conversion factors</strong></p> <p><em>conversion_elements.csv:</em> Factors applied for conversion from metal compounds to elemental metals.</p> <p><em>conversion_factors_units.csv:</em> Factors applied for unit conversions.</p> <p> </p> <p><strong>Ore estimation factors</strong></p> <ul> <li>These factors represent content-to-ore ratios (i.e. "tonnes of extracted ore/mineral per ton of produced content”).</li> </ul> <p><em>all_integrated_est_fac_2021-11-04.csv:</em> Factors for estimation of metal and mineral ores (all which have been compiled/integrated)</p> <p><em>applied_est_fac_2021-11-04.csv:</em> Factors for estimation of metal and mineral ores (which have actually been applied)</p> <p><em>average_metal_prices_1990-2020.csv:</em> Metal prices applied in the compilation of estimation ratios.</p> <p><em>raw_metal_to_ore_ratios_fineprint.csv:</em> Raw metal-to-ore ratios derived from FINEPRINT mining data.</p> <p><em>raw_metal_to_ore_ratios_snl.csv:</em> Raw metal-to-ore ratios derived from SNL mining data.</p> <p> </p> <p><strong>Intermediate files from data processing</strong></p> <p><em>all_interm_conv_integr_2021-12-13.csv:</em> Harmonized, converted (units & elemental metals), integrated (i.e. without double counting). Before any estimations (ores & construction minerals) and before final cleaning/formatting.</p> <p><em>wmd_bgs_usgs_interm_harmonized_2021-12-13.csv:</em> All harmonized raw data from WMD/BGS/USGS, before any further processing (i.e. with double counting).</p> <p> </p> <p><strong>Comparison data (for mining accounts from FINEPRINT project)</strong></p> <p><em>data_for_comparison_2022-05-24.csv:</em> Data set specifically compiled for comparison with accounts on production of mines from the FINEPRINT project. Has been applied for verification of data published in <em>"Jasansky et al. (2022) An open database on global coal and metal mining"</em>.</p> <ul> <li>Includes all available types of materials which have been reported (e.g. ores and metals and metal compounds) <ul> <li>meaning: also materials which are associated with each other, for example iron ore and iron (and would therefore have been selectively integrated/excluded in the GMFD compilation).</li> </ul> </li> <li>Excludes any double counting for the exact same material from different data sources</li> <li>Harmonized IDs, converted units</li> <li>Includes metal compounds approximated/converted from reported elemental metals (where possible)</li> </ul> <p> </p> <p><strong>materialflows.net</strong></p> <p><em>data_sunburst_material_profiles_20220607.csv:</em> Full detail of data underlying the Sunburst visualization "Global Domestic Extraction in 2019, by material group" in section "Raw Material Profiles" on materialsflow.net. However, for all available years. Includes data on Domestic Extraction of biomass. Includes detail for CCC, MFA13+, MFA4+</p> <p> </p> <p><strong>Outliers</strong></p> <p><em>overview_adjusted_outliers_2021-12-22.csv:</em> Overview of outliers which were adjusted during final formatting.</p> <p> </p> <p><strong>Other</strong></p> <p><em>approximation_tailings_detailed_2021-09-26.csv:</em> Estimation of tailings based on reported amounts of ores/minerals and their respective contents.</p> <p> </p>
Extracted and Anonymised Qualitative Data on Students' Acceptance of an Early Warning System
<p>The data published in this record was adopted in the following study: </p> <p><em><strong>Exploring Higher Education students' experience with AI-powered educational tools: The case of an Early Warning System </strong></em></p> <p>The study analyses the students' experience of an early warning system developed at a fully online university. The study is based on 21 semi-structured interviews that yielded a corpus of 21,761 words, for which a mixed inductive and deductive codification approach was applied after thematic analysis. We focused on 11 themes, 52 subthemes, and 396 coded segments to perform content analysis. Our findings revealed that the students, primarily senior workers with a high-level academic self-efficacy, had little experience with this type of system and low expectations about it. However, a usage experience triggered interest and meaningful reflections on the mentioned tool. Nevertheless, a comparative analysis between disciplines related to Computer Science and Economics showed higher confidence and expectation about the system and artificial intelligence overall by the first group. These results highlight the relevance of supporting students' further experiences and understanding of artificial intelligence systems in education to accept them and mainly to participate in iterative development processes of such tools to achieve quality, relevance, and fairness.</p> <p>The three records attached as part of the dataset include:</p> <p>1- The General CodeTree with exemplar coding excerpts in Spanish<br> 2- Extract of transcriptions in English<br> 3- Full Report in Spanish as extracted from NVIVO, including the extracted codes for the synthesis (1,2) in blue, and the comments made by the two researchers engaged in the interrater agreement.<br> 4- General Content Analysis (Spreadsheet ODS)</p> <p> </p>
Extracting abundance information from DNA-based data
<p><span><span><span><span>The accurate extraction of species-abundance information from DNA-based data (metabarcoding, metagenomics) could contribute usefully to the reconstruction of diets and quantitative foodwebs, the inference of species interactions, the modelling of population dynamics and species distributions, the biomonitoring of environmental state and change, and the inference of false positives and negatives. However, capture bias, capture noise, species pipeline biases, and pipeline noise all combine to inject error into DNA-based datasets. This review focuses on methods for correcting the latter two error sources, as the first two are addressed extensively in the ecological survey literature. To extract abundance information from DNA-based data, it is useful to distinguish two concepts. (1) <em>Across</em>-species quantification describes relative species abundances within a single sample. (2) In contrast, <em>within</em>-species quantification describes how the abundance of each individual species varies across samples, where the samples could be a time series, an environmental gradient, or different experimental treatments. In the first part of this paper, we review methods to remove species pipeline biases and pipeline noise. In the second part, we provide a detailed protocol and demonstrate experimentally how to use a 'DNA spike-in' (an internal standard) to remove pipeline noise and recover within-species abundance information.</span></span></span></span></p>
Text-fig. 4. Mastixia cf. oregonensis (R.A.SCOTT) TIFFNEY et HAGGARD from the London Clay, originally included within the concept of M. cantiensis. a–c: V. 22960(1). a: Transverse fracture, showing c-shaped locule, dorsal infold, and sculptured endocarp, reflected light. b: Transverse digital section from micro-CT scan data. c: Surface view of ribbed endocarp extracted from micro-CT data. d: Transverse fracture, reflected light, V. 22955 (originally illustrated in pl. 25, fig. 4 of Reid and Chandler 1933). e, f: Transverse physical section, V. 22963(2) showing U-shaped locule and longitudinal dorsal infold. g–i reflected light. g: Detail from left of (d). h, i: Detail from right of (f). Scale bars 5 mm in (a–f), 1 mm in (g–i). in Mastixioid Fruits (Cornales) From The Early Eocene London Clay Flora: Morphology, Anatomy And Nomenclatural Revision
Text-fig. 4. Mastixia cf. oregonensis (R.A.SCOTT) TIFFNEY et HAGGARD from the London Clay, originally included within the concept of M. cantiensis. a–c: V. 22960(1). a: Transverse fracture, showing c-shaped locule, dorsal infold, and sculptured endocarp, reflected light. b: Transverse digital section from micro-CT scan data. c: Surface view of ribbed endocarp extracted from micro-CT data. d: Transverse fracture, reflected light, V. 22955 (originally illustrated in pl. 25, fig. 4 of Reid and Chandler 1933). e, f: Transverse physical section, V. 22963(2) showing U-shaped locule and longitudinal dorsal infold. g–i reflected light. g: Detail from left of (d). h, i: Detail from right of (f). Scale bars 5 mm in (a–f), 1 mm in (g–i).
supplementary data about Extraction, Isolation and Structure elucidation of Two Phenolic acids from Aerial parts of Celery and Coriander.
<p>supplementary data about Extraction, Isolation and Structure elucidation of Two Phenolic acids from Aerial parts of Celery and Coriander.</p> <p><br> caffiec acid nmr 2.pdf <br> supplementary data.docx</p> <p><a href="https://zenodo.org/api/files/52908924-99c6-4a2c-8047-ef7131714205/p%20coumaric%20acid%20nmr%202.pdf">p coumaric acid nmr 2.pdf</a></p>
Ultrafast data of "Near-Infrared Plasmon-Induced Hot Electron Extraction Evidence in an Indium Tin Oxide Nanoparticle/Monolayer Molybdenum Disulfide Heterostructure"
<p>Ultrafast differential transmission data:</p> <p>- Ito.txt : differential transmission map of indium tin oxide nanoparticles pumped at 1750 nm</p> <p>- Ito_Mos2.txt : differential transmission map of indium tin oxide nanoparticle / monolayer MoS2 heterojunction pumped at 1750 nm</p> <p>- MoS2_ir.txt : differential transmission map of monolayer MoS2 heterojunction pumped at 1750 nm</p> <p>- MoS2_vis.txt : differential transmission map of monolayer MoS2 heterojunction pumped at 500 nm</p> <p> </p> <p>In the matrix the first line is the vector of the delays in femtosecond, while the first raw is the vector of the wavelengths in nanometers.</p>
AiNU data for Physics-based material parameters extraction from perovskite experiments via Bayesian optimization
<p>This file contains the AiNU data used for the article entitled by <em>Physics-based material parameters extraction from perovskite experiments via Bayesian optimization</em> (https://arxiv.org/abs/2402.11101).</p>
United States State Cancer Profiles data extract
<p>State Cancer Profiles (https://statecancerprofiles.cancer.gov) hosts an interactive website for tracking United States cancer incidence and prevalence. The dataset hosted here is an automated scraping from all locales for all demographic variables and diseases. </p> <p>Two tables are available:</p> <ol> <li>Cancer incidence</li> <li>Cancer mortality</li> </ol> <p>The dataset is meant for data mining or for building additional data products based on the state cancer profiles data, but without having to scrape the data yourself. </p>
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.