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246 results for “MW”
A detailed flowsheet of a 100 MW Solid Oxide Fuel Cell plant modeled in ASPEN PLUS
<p>Files required for modeling a 100 MW Solid Oxide Fuel Cell Plant (Power-to-Gas Mode) in Aspen Plus. The plant was designed by Butera et al.[1]. A detailed capital cost estimate was made using the AspenTech Process Economic Analyzer and written in ESA.xlsx. </p> <p>Further details are available upon request: alexandru.botan@phystech.edu</p> <p>[1] Butera, G., Jensen, S.H., and Clausen, L.R. "A novel system for large-scale storage of electricity as synthetic natural gas" submitted to J. Energy</p> <p> </p> <p> </p>
Electronic Supplement to Structural configuration of the Otates fault (southern Basin-and-Range Province) and its rupture in the 3 May 1887 MW = 7.5 Sonora, Mexico earthquake
<p>Electronic supplement to "Structural configuration of the Otates fault (southern Basin-and-Range Province) and its rupture in the 3 May 1887 MW = 7.5 Sonora, Mexico earthquake" (Seismological Society of America Bulletin, v. 98, no. 6, p. 2879-2893, 2008) with color-coded elevation model, satellite image of major Basin andRange normal faults in the study area, color version of geologic map, and additional photographs.</p> <p>High-resolution files of these figures are also available without restriction from </p> <p>http://www.seismosoc.org/Publications/BSSA_html/bssa_98-6/2008129-esupp/</p>
SeisSol dynamic rupture model setup of the Mw 7.5 Palu earthquake scenario published in Ulrich et al. (2019)
<p>All data required to run the dynamic rupture model of the Palu earthquake presented in:</p> <p>Ulrich, T., Vater, S., Madden, E. H., Behrens, J., van Dinther, Y., van Zelst, I., Fielding, E. J., Liang, C. & Gabriel, A. A. (2019). Coupled, Physics-based Modeling Reveals Earthquake Displacements are Critical to the 2018 Palu, Sulawesi Tsunami. doi: 10.31223/osf.io/3bwqa.</p> <p>A detailed readme file summarizing the data and data formats is also provided.</p>
InSAR coseismic deformation for the 2 April 2024, Mw 7.4, Hualien (Eastern Taiwan) earthquake
<p>This dataset includes coseismic InSAR deformation for the 2024 Mw 7.4 Hualien (Eastern Taiwan) earthquake.</p>
Postseismic Deformation Due to the 2021 MW 7.4 Maduo (China) Earthquake and Implications for Regional Rheology and Seismic Hazards around the Bayan Har block
<p><span>input.sh: Model input file in RELAX to simulate the coupled afterslip and viscoelastic contributions in the study of Tian et al. (2024), EPSL</span></p> <p><span>****.txt: Observed postseismic time series following the 2021 MW 7.4 Maduo (China) Earthquake</span></p> <p> </p> <p><span>Title: Postseismic Deformation Due to the 2021 MW 7.4 Maduo (China) Earthquake and Implications for Regional Rheology and Seismic Hazards around the Bayan Har block</span></p>
oceanus: Populations of stellar streams in deforming MW--LMC systems - I
<p>We publish o<em>ceanus,</em> the t = 0 Gyr simulation snapshots of all 16,384 streams in each MW--LMC potential used in<em> </em>Brooks, R. A. N et al. (2024)<em>.</em> The first part of the archived data includes:</p> <ul> <li><strong>rigid-mw-woutmotion-nolmc.hdf5</strong> - dataset for the stream population generated in the "Rigid MW without motion (no LMC)" potential.</li> <li><strong>rigid-mw-wmotion-nolmc.hdf5</strong> - dataset for the stream population generated in the "Rigid MW + motion (no LMC)" potential.</li> <li><strong>rigidmono-wlmc.hdf5 </strong>- dataset for the stream population generated in the "Rigid Monopole & LMC" potential.</li> <li><strong>evolmono-wlmc.hdf5</strong> - dataset for the stream population generated in the "Evolving Monopole & LMC" potential.</li> </ul> <p>Each stream contains 20,000 particles with 3-D Galactocentric positions and velocities, plus progenitor information on its initial conditions, mass and scale radius. We do not include summary statistic values. The functions to calculate stream summary statistics will be shared upon reasonable request. This dataset can be used to explore the effect of the LMC and the MW halo response on MW streams.</p> <p>The basis function expansion MW--LMC potentials can be found and installed using instruction at:<em> </em><a href="https://github.com/sophialilleengen/mwlmc" target="_blank" rel="noopener">https://github.com/sophialilleengen/mwlmc</a>.</p>
oceanus: Populations of stellar streams in deforming MW--LMC systems - II
<p>We publish o<em>ceanus,</em> the t = 0 Gyr simulation snapshots of all 16,384 streams in each MW--LMC potential used in Brooks, R. A. N et al. (2024)<em>.</em> The second part of the archived data includes:</p> <ul> <li><strong>monodipole-wlmc.hdf5 </strong>- dataset for the stream population generated in the "Monopole + Dipole & LMC" potential.</li> <li><strong>monoquad-wlmc.hdf5 </strong>- dataset for the stream population generated in the "Monopole + Quadrupole & LMC" potential.</li> <li><strong>monodipolequad-wlmc.hdf5 </strong>- dataset for the stream population generated in the "Monopole + Dipole + Quadrupole & LMC" potential.</li> <li><strong>fullexp-nolmc.hdf5 </strong>- dataset for the stream population generated in the "ull Expansion & LMC" potential.</li> <li><strong>fullexp-wlmc.hdf5 </strong>- dataset for the stream population generated in the "ull Expansion (no LMC)" potential.</li> </ul> <p>Each stream contains 20,000 particles with 3-D Galactocentric positions and velocities, plus progenitor information on its initial conditions, mass and scale radius. We do not include summary statistic values. The functions to calculate stream summary statistics will be shared upon reasonable request. This dataset can be used to explore the effect of the LMC and the MW halo response on MW streams.</p> <p>The basis function expansion MW--LMC potentials can be found and installed using instruction at: <a href="https://github.com/sophialilleengen/mwlmc" target="_blank" rel="noopener">https://github.com/sophialilleengen/mwlmc</a>.</p>
Very Early Postseismic Deformation following the 2015 Mw 8.3 Illapel Earthquake, Chile Revealed from High-rate GPS
<p>Daily.zip: daily GPS solutions at 12 Chilean stations</p> <p>Subdaily.zip: 1-Hz GPS Solutions at 12 Chilean stations.</p>
The 2021 MW 6.2 Mamuju, West Sulawesi, Indonesia Earthquake: Partial rupture of the Makassar Strait Thrust
<p>Aftershock data sets for Paper Meilano et. al., 2022, The 2021 MW 6.2 Mamuju, West Sulawesi, Indonesia Earthquake: Partial rupture of the Makassar Strait Thrust published at GJI</p>
GNSS-Acoustic Data Capturing the Mw 8.2 July 28, 2021 Chignik Earthquake
<p>GNSS-Acoustic surveys collected at a site, SEM1, along the Alaska Subduction Zone southwest of Kodiak, AK from 2018-2021. These data contain positions close to the trench of the subduction zone both prior to and following the July 28, 2021 Mw 8.2 Chignik earthquake. Contains raw data files, data extractions in a text column format, and processed site positions.</p>
Co-seismic slip of the 18 April 2021 Mw 5.9 Genaveh earthquake in the South Dezful Embayment of Zagros (Iran) and its aftershock sequence
<p>This public repository contains INSAR and other processed data for the manuscript : "Co-seismic slip of the 18 April 2021 Mw 5.9 Genaveh earthquake in the South Dezful Embayment of Zagros (Iran) and its aftershock sequence"</p> <ul> <li>InSAR unwrapped and geocoded files, for the ascending track A101 and the descending track D35: <ul> <li>GDM_Asc101_InU_geo_20210414_20210426_sd_4rlks.tiff</li> <li>GDM_Desc35_InU_geo_20210410_20210422_sd_4rlks.tiff</li> </ul> </li> <li>Sampled quadtree data for the ascending and descending data with LOS vector: <ul> <li>a101_okinv_input</li> <li>d35_okinv_input</li> </ul> </li> <li>Slip distribution model for the fault dipping N and the fault dipping S: <ul> <li>SDM_dipN_oksar.dat</li> <li>SDM_dipS_oksar.dat</li> </ul> </li> </ul> <p> </p>
Data files for 'Tan et al., (2022). Seismogenesis of the 2021 Mw 7.1 earthquake sequence near the northeastern Japan revealed by double-difference seismic tomography'
<p>catalog.dat : the selected earthquake phase data (originated from Hi-net, https://www.hinet.bosai.go.jp/?LANG=en)</p> <p>station.dat : the seismic station coordinates</p> <p>MOD : the initial velocity models (including the grid nodes, Vp & Vp/Vs)</p> <p>relocation.dat : the earthquake relocations by the DD tomography</p> <p>Vp_model.dat, Vs_model.dat, VpVs_model.dat : the inverted 3D velocity models by DD tomography (having exactly the same layout as MOD)</p>
Precise, NLL-SSST-coherence hypocenter catalog for the 2023 Mw 7.8 and Mw 7.6 SE Turkey earthquake sequence.
<p><strong>CSV catalog file and visualizations of NLL-SSST-coherence earthquake relocations for the 2023 Mw 7.8 and Mw 7.6, Kahramanmaraş - Gaziantep, Turkey earthquake sequence (28,264 events, M≥1.5, 2023-01-01 to 2023-06-24).</strong></p> <p>NLL-SSST-coherence (<a href="https://doi.org/10.1029/2021JB023190">Lomax and Savvaidis, 2022</a>; <a href="https://doi.org/10.26443/seismica.v2i1.324">Lomax and Henry, 2023</a>) is an enhanced, absolute-timing earthquake location procedure which 1) iteratively generates spatially varying travel-time corrections to improve multi-scale location precision and 2) uses waveform similarity to improve fine-scale location precision.</p> <p>Relocations performed with merged phase arrival data available from AFAD (<a href="https://deprem.afad.gov.tr/event-catalog">https://deprem.afad.gov.tr/event-catalog</a>) and KOERI (<a href="http://www.koeri.boun.edu.tr/sismo/2/bultenler">http://www.koeri.boun.edu.tr/sismo/2/bultenler</a>) downloaded on 2023-06-23. All events in the AFAD catalog with M≥1.5 are used for relocation; for each AFAD event, arrival data for the corresponding events from KOERI is merged when available (epicenter within 10km, origin time within 10 sec).</p> <p>Seismic velocity model is a smoothed version of the "Final 1-D" velocity model from:<br> Acarel, D., Cambaz, M.D., Turhan, F., Mutlu, A.K. & Polat, R., 2019. Seismotectonics of Malatya Fault, Eastern Turkey. Open Geosciences, 11, 1098–1111. Available at: <a href="https://doi.org/10.1515/geo-2019-0085">https://doi.org/10.1515/geo-2019-0085</a>.</p> <p>[For relocations of events starting from 2020-01-01 through 2023-03-04 and including the 2020 Mw 6.8 Elazığ, Turkey sequence, see v1.0 of this dataset: <a href="https://doi.org/10.5281/zenodo.7699882">https://doi.org/10.5281/zenodo.7699882</a>]<br> </p> <p>This repository archive file contains:</p> <p><strong>Full catalog in CSV format</strong>: X_Turkey_20230624A_Acarel2019smooth_NLL-SSST-coherence_M1.5.csv<br> CSV file data columns correspond to selected fields of the of NonLinLoc Hypocenter format output <a href="http://alomax.free.fr/nlloc/soft7.00/formats.html#_location_hypphs_">http://alomax.free.fr/nlloc/soft7.00/formats.html#_location_hypphs_</a></p> <p><strong>Key NLL-SSST-coherence configuration files</strong>: NLL-SSST-coherence_config/</p> <p><strong>Visualization images:</strong></p> <p> <strong>Full catalog</strong>: A_Turkey_20230624A_Acarel2019smooth_NLL-SSST-coherence_M1.5.png<br> <strong>Events with (68% location ellipsoid) err ≤ 8km, origin-time color scale</strong>: B_Turkey_20230624A_Acarel2019smooth_NLL-SSST-coherence_M1.5_se8km_OTIME.png<br> <strong>Events with err ≤ 8km</strong>: B_Turkey_20230624A_Acarel2019smooth_NLL-SSST-coherence_M1.5_se8km.png<br> <strong>Events with err ≤ 8km, depth ≤ 10km</strong>: C_Turkey_20230624A_Acarel2019smooth_NLL-SSST-coherence_M1.5_se8km_z-10.png<br> <strong>Events with err ≤ 8km, depth ≥ 10km</strong>: C_Turkey_20230624A_Acarel2019smooth_NLL-SSST-coherence_M1.5_se8km_z10-.png</p> <p>Symbol size is proportional to event magnitude.<br> AFAD stations shown by light gray inverted pyramids.<br> KOERI stations shown by dark gray inverted pyramids.</p> <p>Origin-time plot event colors:<br> Blue: before 2023-02-06 M 7.8 event<br> Yellow: from 2023-02-06 01h17 UTC M 7.8 event through 2023-02-06 10h24 UTC M 7.6 event<br> Orange to Red: after 2023-02-06 10h24 UTC M 7.6 event</p> <p>Plot data:<br> Background image from https://opentopography.org<br> Mapped surface faults (light purple) from: Emre, Ö., Duman, T.Y., Özalp, S., Şaroğlu, F., Olgun, Ş., Elmacı, H. & Çan, T., 2018. Active fault database of Turkey. <em>Bull Earthquake Eng</em>, <strong>16</strong>, 3229–3275. <a href="https://doi.org/10.1007/s10518-016-0041-2">https://doi.org/10.1007/s10518-016-0041-2</a><br> Surface Rupture Lines (green) from: Reitman, N.G., Briggs, R.W., Barnhart, W.D., Thompson Jobe, J.A., DuRoss, C.B., Hatem, A.E., Gold, R.D., Akçiz, S., Koehler, R.D., Mejstrik, J.D., Collett, C., 2023, Fault rupture mapping of the 6 February 2023 Kahramanmaraş, Türkiye, earthquake sequence from satellite data: U.S. Geological Survey data release, <a href="https://doi.org/10.5066/P985I7U2">https://doi.org/10.5066/P985I7U2</a>.</p> <p> </p> <p>Thanks to Sinan Ozeren, Didem Cambaz, Fatih Turhan, Dogan Kalafat, Selda Altuncu Poyraz, Kıvanç Kekovalı, Onur Tan, Alberto Michelini and Pierre Henry for assistance and discussions.</p>
Data files for 'Tan et al., (2023). Structural heterogeneity-controlled rupture process of the 2021 Mw 7.1 Fukushima, Japan earthquake revealed by joint inversion of seismic and geodetic data'
<p>slip model.dat: rupture model of the 2021 Mw 7.1 Fukushima earthquake</p> <p>In 'slip model.dat', each row contains the moment rate function of each sub-fault. The numbers of the sub-faults are given in the first two columns.</p>
Slip model of the 2022 Mw 6.6 Luding earthquake from inversion of GNSS and Sentinel-1A satellites
<p>2022年Mw 6.6泸定地震的滑移模型,来自GNSS和Sentinel-1A卫星的反演“2022年Mw 6.6泸定地震滑移模型,GNSS和Sentinel-1A卫星反演”中使用的GNSS数据</p>
Surface rupture data associated with the 2020 Mw 6.6 Masbate earthquake, Philippines
<p> </p> <p>The dataset comprises vector files depicting the delineated surface rupture associated with the 2020 Mw 6.6 Masbate earthquake, along with field measurements recorded in a spreadsheet. Mapping of the surface rupture was conducted using ground and drone surveys. The field measurements, taken with tape measures, were supplemented with measurements derived from drone orthophotos.</p>
Dynamic rupture of the 2021 MW 7.4 Maduo earthquake
<p>The dataset includes the figures and data in the article "Dynamic rupture of the 2021 MW 7.4 Maduo earthquake: An intra-block event controlled by fault geometry".</p>
Environmental effects caused by the Mw 7.7, September 19, 2022, Michoacán (Mexico)
<p>This dataset includes documentation of Earthquake Environmental Effects (EEEs) triggered by the Mw 7.7, September 19, 2022, Michoacán (Mexico) earthquake. Data derive from original field surveys, published reports and papers, and from a search for EEEs posted online in social media and other websites.</p><p>The files include:</p><ul><li>Shapefile of the sites where each EEE has been documented</li><li>Shapefile of earthquake-triggered landslides, mapped as polygons from the interpretation of satellite images</li><li>Shapefile of the area investigated for landslide mapping</li><li>Pdf document providing a description of each EEE.</li></ul><p>Shapefiles are in coordinates WGS84 UTM Zone 13 N</p><p> </p><p>Credits:</p><ul><li>EEE documentation from field surveys: Velázquez Bucio M. Magdalena, Pizza Marco, Andres David Nuñez-Meneses</li><li>EEE documentation from social media: Muccignato Eliana, Velázquez Bucio M. Magdalena, Pizza Marco</li><li>Landslide mapping from interpretation of satellite images: Ferrario Francesca, Sridharan Aadityan</li><li>ESI intensity assessment: Velázquez Bucio M. Magdalena, Ferrario Francesca, Lacan Pierre, Muccignato Eliana, Pizza Marco, Porfido Sabina, Michetti Alessandro M.</li><li>Supervision: Velázquez Bucio M. Magdalena, Lacan Pierre, Michetti Alessandro M.</li></ul>
Evolution of coseismic and post-seismic landsliding after the 2015 Mw 7.8 Gorkha earthquake, Nepal
<p>Landslide area density grid used in the analysis of the spatial evolution of landsliding following the 2015 Mw 7.8 Gorkha earthquake in Nepal. The data include 11 epochs of landslide area density, including bi-annual assessments between 2014 and 2018 (pre- and post-monsoon), and an additional coseismic assessment from 2015. </p> <p>This research has been supported by the UKRI-DFID SHEAR program (201844-112). </p>
Stora Träskön barrel wreck MW#1185 HiRes
# Stora Träskön barrel wreck on the Gulf of Finland # © Topi Sellman 09/2017 Maritime Archaeological Society of Finland, www.mas.fi National Heritage Agency ID: 1185, location: ETRS89/WGS84 Lat: 59° 57,4712' Lon: 24° 22,2829' The wreck lies in about 20m depth. The wreck is about 20 meters long and 5 meters wide. The wreck has been C14 dated to the midlle of 16th century. It is built of Oak and has had a small fireplace near the bow. There are remnants of several barrels in the wreck. The stern of the wreck has been severily damaged by anchoring. The wreck belongs to Porkkala Wreck Park, www.wreckpark.eu NHA wreck page: https://www.kyppi.fi/palveluikkuna/mjreki/read/asp/r_kohde_det.aspx?KOHDE_ID=1185 Hylyt.net wreck page: https://www.hylyt.net/item/tynnyrihylky-3015/ Source: Objaverse 1.0 / Sketchfab
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International Brain Laboratory public data
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OpenNeuro
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