Hypocentral temperatures, crustal seismogenic thickness and 3D thermal model of the South Caribbean and NW South America

التفاصيل البيبلوغرافية
العنوان: Hypocentral temperatures, crustal seismogenic thickness and 3D thermal model of the South Caribbean and NW South America
المؤلفون: Gómez-García, Ángela María, González, Álvaro, Cacace, Mauro, Scheck-Wenderoth, Magdalena, Monsalve, Gaspar
المساهمون: Gómez-García, Ángela María, Scheck-Wenderoth, Magdalena, Monsalve, Gaspar
بيانات النشر: GFZ Data Services
سنة النشر: 2022
المجموعة: GFZ Data Services (German Research Centre for Geosciences, Helmholtz-Zentrum Potsdam)
مصطلحات موضوعية: 3D thermal model, seismogenic thickness, earthquake hypocentral temperatures, seismogenic zone, northwestern South America, EARTH SCIENCE > HUMAN DIMENSIONS > NATURAL HAZARDS, EARTH SCIENCE > SOLID EARTH > GEOTHERMAL DYNAMICS, EARTH SCIENCE > SOLID EARTH > TECTONICS > EARTHQUAKES
جغرافية الموضوع: 83 -62 5.2 16
Time: 3D thermal model of the South Caribbean and NW South America
الوصف: This data repository contains the 3D steady-state thermal field computed for the South Caribbean and NW South America down to 75 km depth, the modelled hypocentral temperatures, the depths to the upper and lower stability transitions, as well as the seismogenic thickness calculated from selected earthquakes of the ISC Bulletin (International Seismological Centre, 2022). All methodological details can be found in the main publication (see section 2). We used the uppermost 75 km of the gravity-constrained structural and density model of Gómez-García et al. (2020, 2021) to derive the 3D thermal configuration of the study area. A steady-state approach was followed, in which upper and lower boundary conditions were set to run the thermal experiments using the software GOLEM (Cacace & Jacquey, 2017; Jacquey & Cacace, 2017). We selected earthquakes from the ISC Bulletin from January 1980 to January 2021 (International Seismological Centre, 2022), considering the magnitude of completeness for different periods, removing earthquakes without depth, set as 0 km or fixed, as well as those with reported hypocentral depth errors >30 km. Of this set, we selected the crustal earthquakes, located between the topo-bathymetry from the GEBCO relief (Weatherall et al., 2015) and the Moho depth from the GEMMA model (Reguzzoni & Sampietro, 2015), interpolated to a resolution of 5 km. From this earthquake subset we computed the upper and lower stability transitions for seismogenesis, as the 10th and 90th percentiles (D10 and D90), respectively, of the hypocentral depths. These percentiles were mapped on a latitude-longitude grid, using for each grid node its 20 closest earthquakes as sample. The hypocentral temperatures and the temperatures at the D10 and D90 crustal depths were calculated from the lithospheric-scale thermal model. Lastly, the crustal seismogenic thickness was computed as the difference between D90 and D10 for each grid node. For more details about the modelling approach and interpretation of ...
نوع الوثيقة: dataset
اللغة: unknown
Relation: http://dx.doi.org/10.5880/GFZ.4.5.20202.005
DOI: 10.5880/GFZ.4.5.20202.005
الاتاحة: https://doi.org/10.5880/GFZ.4.5.20202.005
Rights: CC BY 4.0 ; http://creativecommons.org/licenses/by/4.0/
رقم الانضمام: edsbas.FB3AE89F
قاعدة البيانات: BASE