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1,445 results for “Irradiance”
STEM Data ANP-6 Ion_Irradiated_Fe_5MeV_0.1_dpa_Loops
<p><span><span>STEM data on the RPV weld ANP-6 after ion irradiation with 5MeV Fe ions to 0.1dpa at 500nm for the ENTENTE Database</span></span></p>
STEM Data ANP-10 Ion_Irradiated_Fe_5MeV_0.1_dpa_Loops
<p><span><span>STEM data on the RPV steel ANP-10 after ion irradiation with 5MeV Fe ions to 0.1dpa at 500nm for the ENTENTE Database</span></span></p>
STEM Data ANP-10 Ion_Irradiated_Fe_5MeV_1.0_dpa_Loops
<p><span><span>STEM data on the RPV steel ANP-10 after ion irradiation with 5MeV Fe ions to 1.0dpa at 500nm for the ENTENTE Database</span></span></p>
Confocal microscopy of gH2AX and 53BP1 DNA repair foci of cells exposed to gamma-irradiation, pt. 2/3
<p><strong>Summary</strong></p> <p>Dataset of confocal microscopy data of cells exposed to gamma-irradiation and immunostained with gH2AX and 53BP1.</p> <ul> <li><strong>Part 1/3: </strong>Head and neck primocultures immunostained with gH2AX/53BP1, Testing dataset. DOI <a href="https://doi.org/10.5281/zenodo.2564980">10.5281/zenodo.2564980</a></li> <li><strong>Part 2/3 (this dataset)</strong>: U-87 and NHDF Cells exposed to 1-4 Gy confocal microscopy data of head and neck tumor primocultures immunostained with gH2AX/53BP1. Testing dataset. DOI <a href="https://doi.org/10.5281/zenodo.2572450">10.5281/zenodo.2572450</a>. 174 TIFFs</li> <li><strong>Part 3/3</strong>: training dataset for nuclei and gH2AX foci with ground truth annotation masks, head and neck primocultures (head and neck non-tumor and spinocellular tumor cells). DOI <a href="https://doi.org/10.5281/zenodo.2576241">10.5281/zenodo.2576241</a>. 150 TIFFs for nuclei learning incl 150 png nuclei masks + 99 TIFFs for DNA repair foci training</li> <li><strong>Code</strong>: the code is available at <a href="https://github.com/tomasvicar/LearnFoci">https://github.com/tomasvicar/LearnFoci</a></li> </ul> <p><strong>Materials and methods</strong></p> <p><em>Dataset</em></p> <p>Following cells were used: (1) patient primocultures of patients with spinocellular head and neck tumors (histologically verified tumor and tumor-adjacent tissues), isolation protocol descibed in <em>Svobodova et al, 2017</em>, (2) primary glioblastoma cell line U-87 (ATCC HTB-14, LGC Standards, United Kingdom), (3) primary normal human dermal fibroblasts (NHDF, PromoCell, Hedelberg, Germany) isolated from the dermis of juvenile foreskin or adult skin.<br> The study was conducted in accord with the Helsinki Declaration of 1964 and all subsequent revisions thereof. It was approved by the ethical committee of St. Anne’s Faculty Hospital, Brno. Primoculture cells were cultivated in Pen/Strep antibiotic solution (PAA Laboratories GmbH, Austria) in RPMI-1640 medium with 10% FBS (Biochrom, USA) at 37 °C and 50% CO2 in humidified atmosphere up to 50% confluence. U-87 were grown in Eagle's MEM with 10% FBS.</p> <p><em>Gamma irradiation</em></p> <p>The cells were irradiated at the Institute of Biophysics, Czech Academy of Sciences, Brno, Czech Republic in a following schemes: (a) patient-derived primoculture was irradiated with a single dose of 2 Gy (D = 1 Gy/min) of gamma-rays (60Co, Chisostat, Chirana, CR) , (b) U-87 and NHDF cells were irradiated with doses 1, 2, and 4 Gy (D = 1 Gy/min). Cells were irradiated in RPMI 1640 medium (37 °C, normal atmosphere). Confocal microscopy of gammaH2AX and 53BP1 foci immunodetection was consequently performed.</p> <p><em>Fluorescent staining </em></p> <p>DNA double strand breaks (DSBs) were quantified in different periods of time post-irradiation (30 min, 8h and 24h post irradiation) by means of $\gamma$H2AX and 53BP1 foci immunodetection combined with confocal microscopy. For details see \cite{falk2007chromatin}.</p> <p><em>Confocal microscopy</em></p> <p>The microscopy of samples was performed at the Institute of Biophysics, Czech Academy of Sciences, Brno, Czech Republic. Leica DM RXA microscope (equipped with DMSTC motorized stage, Piezzo z-movement, MicroMax CCD camera, CSU-10 confocal unit and 488, 562, and 714 nm laser diodes with AOTF) was used for acquiring detailed cell images (100× oil immersion Plan Fluotar lens, NA 1.3). Total 50 Z slices was captured with Z step size 0.3 μm.</p> <p><strong>File description</strong></p> <p>all files are compressed hyperstack tiffs (50 Z slices and 3 fluorescent channels, XYCZ order), 100x magnification</p> <ul> <li>Confocal_NHDF_cells_IR_1-4Gy.zip: Human fibroblast NHDF cell line, exposed to gamma irradiation doses 1, 2, and 4 Gy, 64 TIFFs</li> <li>Confocal_U-87_cells_IR_1-4Gy.zip: Human glioblastoma U-87 cell line, exposed to gamma irradiation doses 1, 2, and 4 Gy, 108 TIFFs</li> </ul>
Confocal microscopy of gH2AX and 53BP1 DNA repair foci of cells exposed to gamma-irradiation, pt. 1/3
<p><strong>Summary</strong></p> <p>Dataset of confocal microscopy data of cells exposed to gamma-irradiation and immunostained with gH2AX and 53BP1.</p> <ul> <li><strong>Part 1/3 (this dataset): </strong>Head and neck primocultures immunostained with gH2AX/53BP1, Testing dataset. DOI <a href="https://doi.org/10.5281/zenodo.2564980">10.5281/zenodo.2564980</a></li> <li><strong>Part 2/3</strong>: U-87 and NHDF Cells exposed to 1-4 Gy confocal microscopy data of head and neck tumor primocultures immunostained with gH2AX/53BP1. Testing dataset. DOI <a href="https://doi.org/10.5281/zenodo.2572450">10.5281/zenodo.2572450</a>. 174 TIFFs</li> <li><strong>Part 3/3</strong>: training dataset for nuclei and gH2AX foci with ground truth annotation masks, head and neck primocultures (head and neck non-tumor and spinocellular tumor cells). DOI <a href="https://doi.org/10.5281/zenodo.2576241">10.5281/zenodo.2576241</a>. 150 TIFFs for nuclei learning incl 150 png nuclei masks + 99 TIFFs for DNA repair foci training</li> <li><strong>Code</strong>: the code is available at <a href="https://github.com/tomasvicar/LearnFoci">https://github.com/tomasvicar/LearnFoci</a></li> </ul> <p><strong>Materials and methods</strong></p> <p><em>Dataset</em></p> <p>Following cells were used: (1) patient primocultures of patients with spinocellular head and neck tumors (histologically verified tumor and tumor-adjacent tissues), isolation protocol descibed in <em>Svobodova et al, 2017</em>, (2) primary glioblastoma cell line U-87 (ATCC HTB-14, LGC Standards, United Kingdom), (3) primary normal human dermal fibroblasts (NHDF, PromoCell, Hedelberg, Germany) isolated from the dermis of juvenile foreskin or adult skin.<br> The study was conducted in accord with the Helsinki Declaration of 1964 and all subsequent revisions thereof. It was approved by the ethical committee of St. Anne’s Faculty Hospital, Brno. Primoculture cells were cultivated in Pen/Strep antibiotic solution (PAA Laboratories GmbH, Austria) in RPMI-1640 medium with 10% FBS (Biochrom, USA) at 37 °C and 50% CO2 in humidified atmosphere up to 50% confluence. U-87 were grown in Eagle's MEM with 10% FBS.</p> <p><em>Gamma irradiation</em></p> <p>The cells were irradiated at the Institute of Biophysics, Czech Academy of Sciences, Brno, Czech Republic in a following schemes: (a) patient-derived primoculture was irradiated with a single dose of 2 Gy (D = 1 Gy/min) of gamma-rays (60Co, Chisostat, Chirana, CR) , (b) U-87 and NHDF cells were irradiated with doses 1, 2, and 4 Gy (D = 1 Gy/min). Cells were irradiated in RPMI 1640 medium (37 °C, normal atmosphere). Confocal microscopy of gammaH2AX and 53BP1 foci immunodetection was consequently performed.</p> <p><em>Fluorescent staining </em></p> <p>DNA double strand breaks (DSBs) were quantified in different periods of time post-irradiation (30 min, 8h and 24h post irradiation) by means of $\gamma$H2AX and 53BP1 foci immunodetection combined with confocal microscopy. For details see \cite{falk2007chromatin}.</p> <p><em>Confocal microscopy</em></p> <p>The microscopy of samples was performed at the Institute of Biophysics, Czech Academy of Sciences, Brno, Czech Republic. Leica DM RXA microscope (equipped with DMSTC motorized stage, Piezzo z-movement, MicroMax CCD camera, CSU-10 confocal unit and 488, 562, and 714 nm laser diodes with AOTF) was used for acquiring detailed cell images (100× oil immersion Plan Fluotar lens, NA 1.3). Total 50 Z slices was captured with Z step size 0.3 μm.</p> <p><strong>File description</strong></p> <p>all files are compressed hyperstack tiffs (50 Z slices and 3 fluorescent channels, XYCZ order), 100x magnification</p> <ul> <li>Confocal_HN_tumor_primocultures.zip: dataset of patient-derived primocultures (gamma-irradiated with 2 Gy and controls), for description see file below, 100 FOVs,</li> <li>Confocal_HN_tumor_primocultures_description.xlsx: description of confocal dataset files and patient tumor characteristics</li> <li>Confocal_HN_tumor_primocultures_train_nuclei.zip: annotated training subset 1 of dataset of patient-derived primocultures (gamma-irradiated with 2 Gy and controls) used for nuclei segmentation training, 150 FOVs, includes TIFF and manually annotated binary mask for nuclei (data_###.tif and respective mask_###.png)</li> <li>Confocal_HN_tumor_primocultures_train_nuclei_description.xlsx: description of above-mentioned files (tissue type, TNM stage, grade, time post irradiation)</li> </ul>
Solar Irradiance (GHI and DNI) for Folsom, CA (lat=38.642N, lon=121.148W)
<p>Solar Irradiance (GHI and DNI) for Folsom, CA (lat=38.642N, lon=121.148W).<br> The file is in comma-separated values format.</p> <p>The file has three columns:<br> 1- Timestamp in UTC in the format yyyy-mm-dd HH:MM:SS<br> 2- GHI measurement in W/m<sup>2</sup><br> 3- DNI measurement in W/m<sup>2</sup></p> <p>The GHI and DNI data included in this data release are measured with a second-generation RSR (RSR-2) from Augustyn, Inc.<br> The RSR-2 consists of a main shadowband head unit and two Licor LI-200SZ pyranometers, which have a typical error of ±5% compared to an Eppley Precision Spectral Pyranometer (PSP)[https://www.licor.com/].<br> The primary pyranometer provides continuous measurement of GHI, while the secondary pyranometer and shadowband enable measurement of the diffuse horizontal irradiance (DHI).<br> DNI is computed directly from the GHI, DHI, and solar zenith angle (<span class="math-tex">\(\theta_z\)</span>).</p>
Predicting the Onset of Void Swelling in Irradiated Metals with Machine Learning
<p>Dataset to support the manuscript, "Predicting the Onset of Void Swelling in Irradiated Metals with Machine Learning", which contains all variables for predicting the target variable.</p>
Reconstructing 10-km-resolution direct normal irradiance dataset through a hybrid algorithm
<p>The 41-year (1982-2022) daily DNI dataset (CHDNI) reconstructed in this study has been uploaded, and stored in netcdf format. The one-year dataset comprises daily DNI estimates for either 365 or 366 days, with individual data files separately organized by year. Each daily file is stored in mat format and labeled as "pred_xxxxxyymm," where ‘xxxx' denotes the year, ‘yy' represents the month, and ‘mm' stands for the day. The geographical scope of CHDNI dataset spans from 3°N to 54°N in latitude and from 72°E to 136°E in longitude. The mat matrix, encapsulating the data, is configured with dimensions of 361 rows and 641 columns, measured in W/m2.</p> <p>If you want to use the CHDNI dataset for related scientific research, please contact us (Email: WHU_wjy@whu.edu.cn).</p> <ul> <li>Wu J, Niu J, Qi Q, Gueymard CA, Wang L, Qin W, et al. Reconstructing 10-km-resolution direct normal irradiance dataset through a hybrid algorithm. Renewable and Sustainable Energy Reviews 2024; 204: 114805.</li> </ul>
Dataset from the paper entitled "Linking Lattice Strain and Fractal Dimensions to Non-Monotonic Volume Changes in Irradiated Nuclear Graphite"
<p>Dataset from the paper entitled "Linking Lattice Strain and Fractal Dimensions to Non-Monotonic Volume Changes in Irradiated Nuclear Graphite". The dataset includes the small angle X-ray scattering measurements, the wide-angle X-ray scattering measurements, and the fitting parameters. Please see the included Readme file for more detail on the organization. </p>
Collected Colorimetric Microscopy (C-Microscopy) Images of Melanocytes and Melanoma 3D Spheroids Irradiated with Different Type of Proton Beam as Used in Proton Radiotherapy
<p>Collected Colorimetric Microscopy (C-Microscopy) images, color calibrated (D65 illuminant), of melanocytes and melanoma 3D spheroids, irradiated with different type of proton beam as used in proton radiotherapy.<br> <br>The data are supplement to:</p> <p>Martyna Durak-Kozica, Ewa Stępień, Jan Swakoń, Benedykt R. Jany, Kamil Kawoń, Damian Wróbel, Sebastian Kusyk, Małgorzata Grzesiak, Katarzyna Knapczyk-Stwora, Andrzej Wróbel, Joanna Chwiejand Paweł Moskal, Short-term response of melanoma spheroids and melanocytes to FLASH proton therapy - colorimetric and FTIR microscopy study, Pol J Med Phys Eng 2024;30(4):263-268 (2024) <a href="https://doi.org/10.2478/pjmpe-2024-0031">https://doi.org/10.2478/pjmpe-2024-0031</a></p> <p> </p> <p><br>HEMA-Spheroids-C-Microscopy.zip - melanocytes 3D spheroids, (C-Microscopy) images, color calibrated (D65 illuminant), image width 435.87 microns</p> <p><br>WM-Spheroids-C-Microscopy.zip - melanoma 3D spheroids, (C-Microscopy) images, color calibrated (D65 illuminant), image width 1089.68 microns</p> <p><br>WM-Spheroids-Texture-C-Microscopy.zip - surface texture of melanoma 3D spheroids, (C-Microscopy) images, color calibrated (D65 illuminant), image width 108.97 microns</p> <p> </p> <p>Proton Beam Radiotherapy Irradiation Conditions:</p> <p>C - Control</p> <p>CC - Control minus 7days</p> <p>LP - conventional proton radiotherapy (CONV) final dose 3Gy (dose rate about 0.140 Gy/s)</p> <p>F - FLASH proton radiotherapy final dose 3Gy (dose rate >60 Gy/s)</p> <p>F20 - FLASH proton radiotherapy final dose 20Gy (dose rate >60 Gy/s)</p> <p>F40 - FLASH proton radiotherapy final dose 40Gy (dose rate >60 Gy/s)</p> <p> </p> <p><br>The details about Colorimetric Microscopy (C-Microscopy) approach could be found in:</p> <p>Benedykt R. Jany, Quantifying Colors at Micrometer Scale by Colorimetric Microscopy (C-Microscopy) Approach, Micron 176, 103557 (2024) <a href="https://doi.org/10.1016/j.micron.2023.103557">https://doi.org/10.1016/j.micron.2023.103557</a></p>
Data related to: Fast low-temperature irradiation creep driven by athermal defect dynamics
<h2>Data set related to article "Fast low-temperature irradiation creep driven by athermal defect dynamics"</h2> <h2>Simulation data</h2> <h3>Molecular dynamics data</h3> <p>The molecular dynamics data is the output of simulations of single-crystal tungsten with periodic boundary conditions evolving under irradiation up to high dose (0.5 dpa). The simulations are performed under a constant externally applied stress, uniaxial to z-direction, and zero stress conditions otherwise. Simulations were performed for stresses of -1.0 GPa, -0.5 GPa, 0 GPa, 0.5 GPa, 1.0 GPa, 1.5 GPa, and 2.0 GPa. Each stress condition was simulated five times independently. Simulations were performed in <a href="https://www.lammps.org/">LAMMPS</a> (see below for the simulation script). Only every 100th frame in LAMMPS Dump format is uploaded here. A frame corresponds to a dose increment of approximately 0.0002 dpa, i.e. frame 1000 corresponds to a dose of approximately 0.2 dpa. The files are zipped. A finer resolution can be supplied upon request (up to every 5th frame).</p> <p>The zip archive naming convention is as follows:</p> <blockquote> <p>For example, archive "srim_neg1p0.zip" contains data of the 5 simulations for -1.0 GPa (='negative 1 point 0'), where snapshot "srim_neg1p0_2/srim_neg1p0_2.1300.dump" refers to independent simulation ID 2, frame 1300, i.e. at a dose of 0.26 dpa. </p> <p>"srim_pos0p5.zip" contains the 5 simulations for 0.5 GPa (='positive 0 point 5'), and so on.</p> </blockquote> <p>Archive "logfiles.zip" contains the simulation output information, containing stresses and box dimensions for every cascade iteration of each simulation. These can be used to generate the box eigenstrains. The columns are defined as follows:</p> <blockquote> <p>iteration number, dose (dpa), total potential energy (eV), pressure xx (bar), pressure yy (bar), pressure zz (bar), pressure xy (bar), pressure xz (bar), pressure yz (bar), simulation box width x (Å), simulation box width y (Å), simulation box width z (Å)</p> </blockquote> <p>The files contain a few lines labelled with "# restart", which marks points at which the simulation was terminated and then continued.</p> <p>Archive "md_eigenstrains.zip" contains the eigenstrain tensor components parallel and perpendicular to the uniaxial stress direction obtained directly from the MD simulations. The format is as follows:</p> <blockquote> <p>For example, files "eigenpara_pos0p5_0.dat" and "eigenperp_pos0p5_0" contain the MD eigenstrains parallel and perpendicular to the uniaxial loading direction of simulation "eigenpara_pos0p5_0", respectively. The first column is the NRT dose (dpa), and the second column is the eigenstrain value at this dose. The perpendicular eigenstrain is the average of the eigenstrain components xx and yy.</p> </blockquote> <h3>Molecular dynamics script</h3> <p>The LAMMPS script for performing high-dose collision cascade simulations is available at:</p> <p> <a href="https://github.com/mb4512/ezcascades/">https://github.com/mb4512/ezcascades</a></p> <p>The simulation input files required to replicate the molecular dynamics simulations of this work are supplied here. Archive "md_input_files.zip" contains simulation input files, specifying box dimensions, stress constraints, the interatomic potential, paths to simulation and scratch directories, and so on. For example, "srim_neg1p0_0.json" is the input file for the "srim_neg1p0_0" simulation.</p> <p>The interatomic potential "W_MNB_JPCM17.eam.fs" used here is the embedded atom method potential for tungsten developed by Mason et al: <a href="https://doi.org/10.1088/1361-648X/aa9776">10.1088/1361-648X/aa9776</a>, available at the <a href="https://www.ctcms.nist.gov/potentials/">NIST Interatomic Potentials Repository</a>.</p> <h3>Surrogate model data</h3> <p>Archive "eigenstrain_models.zip" contains the MLE model parameters for the eigenstrain surrogate models. The format is as follows:</p> <blockquote> <p>For example, files "eigenpara_neg0p5.log" and "eigenperp_neg0p5.log" contain the cubic spline knot points for the MLE model of eigenstrains parallel and perpendicular to the uniaxial loading direction at -0.5 GPa, respectively. The file contains columns labelled as x, y, and sigma, which correspond to dose (dpa), eigenstrain mean, and eigenstrain standard deviation, respectively. The spline boundary conditions are f(x = 0) = 0, f''(x = 0) = 0, and f'(x_end) = 0, where x_end is the final dose value in the list. The model is extrapolated for higher doses: f(x > x_end) = f(x_end).</p> <p>The log files also contain the covariance matrix of the eigenstrain mean values, from which model uncertainties can be derived.</p> </blockquote> <p>Archive "doseprofile.zip" contains the irradiation dose profile as generated using <a href="https://www.srim.org/">SRIM</a> data following the procedure described in the Supplemental Information. The content is as follows:</p> <blockquote> <p>Files "vacgrid_x_8micro_HR.dat", "vacgrid_y_8micro_HR.dat" contain the x and y coordinates of the 2 dimensional grid, respectively. File "vacgrid_z_8micro_HR.dat" contains a list of dose values (in arbitrary units). The values are ordered consistently, that is, the n-th values of each file give the matching tuple (x, y, dose(x,y)).</p> </blockquote> <p> </p>
Investigating Discontinuous X-ray Irradiation as a Damage Mitigation Strategy for [M(COD)Cl]2 Catalysts - Data
<div> <p>This Origin file contains the supporting processed data for all of the figures from the main paper from the publication 'Investigating Discontinuous X-ray Irradiation as a Damage Mitigation Strategy for [M(COD)Cl]2 Catalysts. </p> </div>
Urban Solar Irradiation at Ground Level for Rennes Métropole
<p>Conducting a comprehensive assessment of solar irradiation at the pedestrian scale across all ground surfaces in a city can help identify cooler routes for pedestrian navigation and prepare the city for potential overheating issues by pinpointing overexposed areas. This dataset results from an effective method for conducting such assessments within a Geographic Information System (GIS) at a metric resolution across regions, such as Rennes Métropole in France, which spans over 700 km². This method has been detailed in the article entitled "Efficient matrix algebra encoding for urban solar irradiation simulation: fine-grid ground-level estimation with vector data" (doi: <a href="https://dx.doi.org/10.1080/13658816.2024.2425339" target="_blank" rel="noopener">10.1080/13658816.2024.2425339</a>). Please note that these simulation results only account for the effects of building shading. The shading provided by trees, street furniture, or the terrain model is not considered at all.</p>
Supplementary Movies for the article "The fragmentation mechanism of gold nanoparticles in water under femtosecond laser irradiation"
<p>Supplementary movies for the publication "The fragmentation mechanism of gold nanoparticles in water under femtosecond laser irradiation", <a href="https://doi.org/10.1039/D1NA00406A">https://doi.org/10.1039/D1NA00406A</a>.</p> <p>The movies show gold nanoparticles in water under pulsed laser irradiation and are recorded with <em>in situ </em>liquid cell electron microscopy. The full description of every movie can be found in the "Supplementary Information" file at <a href="https://doi.org/10.1039/D1NA00406A">https://doi.org/10.1039/D1NA00406A</a>.</p>
High resolution solar irradiance variability climatology dataset part 2: classifications, supplementary data, and statistics
<p><strong>Dataset paper</strong></p> <p>See the official dataset description paper (preprint) over at <a href="https://essd.copernicus.org/preprints/essd-2022-456/">Earth System Science Data</a></p> <p><strong>Dataset description</strong></p> <p>High resolution surface solar irradiance series classification, cloud shadow and enhancement statistics, and satellite observations for studying intra-day surface solar irradiance variability.</p> <p><strong>Part 2 of 2</strong></p> <p>This dataset is the derived from the <a href="https://doi.org/10.5281/zenodo.7093164">1 Hz observational record of direct, diffuse, and global horizontal irradiance</a> measured by the Baseline Surface Radiation Network station at Cabauw, the Netherlands. More information about the observational site Cabauw can be found at the <a href="https://ruisdael-observatory.nl/cabauw/">Ruisdael Observatory website</a>.</p> <p><strong>Methodology</strong></p> <p>An extensive dataset description is currently being written for Earth System Science Data. In the mean time, a more condensed description is available in preprint at <a href="https://arxiv.org/abs/2209.10284">Arxiv</a>.</p> <p>Processing scripts are published at this <a href="https://zenodo.org/record/7099491">Zenodo release</a>.</p> <p><strong>Dataset contents</strong></p> <p>This dataset contains daily time series with the following data, from 2011-02 until 2020-12-31:</p> <ol> <li>Cloud shadow and cloud enhancement time series classifications (see methodology)</li> <li>Overcast, clear-sky and variable time series classifications (see methodology)</li> <li><a href="https://www.soda-pro.com/web-services/radiation/cams-mcclear/">CAMS McClear</a> for clear-sky global horizontal irradiance (version 3.5)</li> <li><a href="https://www.soda-pro.com/web-services/radiation/cams-mcclear/">CAMS McClear</a> atmospheric composition input (aerosols, ozone, and total column water vapour)</li> <li>Solar elevation and azimuth angles (calculated using <a href="https://github.com/pingswept/pysolar/releases/tag/0.10">PySolar</a>)</li> <li>Quality flags: non-official 1 Hz and official 1-minute (from <a href="https://doi.pangaea.de/10.1594/PANGAEA.940531">BSRN at PANGAEA</a>)</li> <li>Cabauw observatory<a href="https://dataplatform.knmi.nl/dataset/cesar-tower-meteo-lb1-t10-v1-2"> tower wind speed and direction</a></li> </ol> <p>Additional satellite data time series from 2014-01 until 2016-12:</p> <ol> <li>MSGCPP satellite data for an area over central Netherlands (<a href="https://essd.copernicus.org/articles/9/415/2017/">CLAAS2 source</a>)</li> <li>Post processed timeseries of cloud types over Cabauw derived from this MSGCPP satellite data</li> <li>A nubiscope + satellite derived validation dataset for overcast and clear-sky classifications</li> </ol> <p>Statistics files:</p> <ol> <li>Cloud shadow and cloud enhancement event detection and event statistics based on the time series for 2011-2020</li> <li>Daily radiation statistics for 2011-2020</li> </ol> <p>And finally, for all days there are quicklooks available that visualize the irradiance time series, classification, and if available satellite data.</p> <p><strong>Version History</strong></p> <p><em>New in v1.1</em><strong> </strong></p> <ul> <li>CAMS McClear updated from v3.1 to v3.5 (2011-2020)</li> <li>Fix incorrect dominant cloud type in CLAAS2 timeseries (`claas2_processed.zip`, 2014-2016)</li> <li>Update timeseries statistics and quicklooks with new clear-sky data (2011-2020)</li> <li>Added official quality flags (2011-2020)</li> <li>Added preprocessed validation dataset (2014-2016)</li> <li>Added nubiscope to quicklooks (2014-2016)</li> </ul>
Impact of irradiation on the adhesive performance of resin-based dental biomaterials: a systematic review of laboratory studies
<p>BibTeX file of the electronic searches that were conduced in five databases, Cochrane Library, Embase, OpenGrey through DANS, PubMed, and Web of Science, on 10/01/2023. </p>
The role of irradiance in controlling coralline algal calcification
<p>Coralline algae are an essential element of benthic ecosystems throughout the ocean's photic zone. Yet, the role of light in shaping the physiology of coralline algae from cold-water, low-light habitats is poorly understood. Here, we assess the calcification physiology of five cool-temperate coralline algae in response to different irradiances over three months. We show that in contrast to current models focused on warmer water species, previously observed enhancement of calcification rates by photosynthesis is largely limited to lower irradiances, and that the removal of CO<sub>2</sub> from the calcifying fluid is not the underlying mechanism of this enhancement. Instead, this likely occurs via two processes: 1) increased ion pumping rates to elevate the calcium carbonate saturation state in the calcifying fluid; and 2) a higher daytime pH in the diffusion boundary layer that raises calcifying fluid pH. However, as irradiance increases, ion pumping becomes increasingly saturated limiting further enhancements. Our results also suggest the existence of two calcification strategies in coralline algae and indicate that magnesium incorporation is determined by the magnesium-to-calcium ratio in the calcifying fluid ([Mg]<sub>CF</sub>/[Ca]<sub>CF</sub>). This study adds to our mechanistic understanding of calcification in coralline algae and fills in much-needed knowledge about the role of light in controlling their physiology.</p>
Analysis of the proteomic profile in serum of irradiated nonhuman primates treated with Ex-Rad, a radiation medical countermeasure
<p>There are currently four radiation medical countermeasures that have been approved by the United States Food and Drug Administration to mitigate hematopoietic acute radiation syndrome, all of which are repurposed radiomitigators. The evaluation of additional candidate drugs that may also be helpful for use during a radiological/nuclear emergency is ongoing. A chlorobenzyl sulfone derivative (organosulfur compound) known as Ex-Rad, or ON01210, is one such candidate medical countermeasure, being a novel, small-molecule kinase inhibitor that has demonstrated efficacy in the murine model. In this study, nonhuman primates exposed to ionizing radiation were subsequently administered Ex-Rad as two treatment schedules (Ex-Rad I administered 24 and 36 h post-irradiation, and Ex-Rad II administered 48 and 60 h post-irradiation) and the proteomic profiles of serum using a global molecular profiling approach were assessed. We observed that administration of Ex-Rad post-irradiation is capable of mitigating radiation-induced perturbations in protein abundance, particularly in restoring protein homeostasis and immune response and mitigating hematopoietic damage, at least in part after acute exposure. Taken together, restoration of functionally significant pathway perturbations may serve to protect damage to vital organs and provide long-term survival benefits to the afflicted population.</p>
Data set of solar irradiation from Svalsat, Svalbard
<p>The data collected with a set of SP110 Apogee pyranometers.</p>
Re-irradiation With Fractionated Stereotactic Radiosurgery Plus Cetuximab in Patients With Recurrent Squamous Cell Carcinoma of the Head and Neck
ClinicalTrials.gov study NCT01104922. IPD Sharing: NO. Countries: 1. Publications: 1.
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.