High-performance finite-element simulations of seismic wave propagation in three-dimensional nonlinear inelastic geological media
We present finite-element numerical simulations of seismic wave propagation in non linear inelastic geological media. We demonstrate the feasibility of large-scale modeling based on an implicit numerical scheme and a nonlinear constitutive model. We illustrate our methodology with an application to...
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| Published in: | Parallel computing Vol. 36; no. 5; pp. 308 - 325 |
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| Main Authors: | , , , , |
| Format: | Journal Article |
| Language: | English |
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Elsevier B.V
01.06.2010
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| ISSN: | 0167-8191, 1872-7336 |
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| Abstract | We present finite-element numerical simulations of seismic wave propagation in non linear inelastic geological media. We demonstrate the feasibility of large-scale modeling based on an implicit numerical scheme and a nonlinear constitutive model. We illustrate our methodology with an application to regional scale modeling in the French Riviera, which is prone to earthquakes. The PaStiX direct solver is used to handle large matrix numerical factorizations based on hybrid parallelism to reduce memory overhead. A specific methodology is introduced for the parallel assembly in the context of soil nonlinearity. We analyse the scaling of the parallel algorithms on large-scale configurations and we discuss the physical results. |
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| AbstractList | We present finite-element numerical simulations of seismic wave propagation in non linear inelastic geological media. We demonstrate the feasibility of large-scale modeling based on an implicit numerical scheme and a nonlinear constitutive model. We illustrate our methodology with an application to regional scale modeling in the French Riviera, which is prone to earthquakes. The PaStiX direct solver is used to handle large matrix numerical factorizations based on hybrid parallelism to reduce memory overhead. A specific methodology is introduced for the parallel assembly in the context of soil nonlinearity. We analyse the scaling of the parallel algorithms on large-scale configurations and we discuss the physical results. |
| Author | De Martin, Florent Foerster, Evelyne Dupros, Fabrice Roman, Jean Komatitsch, Dimitri |
| Author_xml | – sequence: 1 givenname: Fabrice surname: Dupros fullname: Dupros, Fabrice email: f.dupros@brgm.fr organization: BRGM, BP 6009, 45060 Orléans Cedex 2, France – sequence: 2 givenname: Florent surname: De Martin fullname: De Martin, Florent email: f.demartin@brgm.fr organization: BRGM, BP 6009, 45060 Orléans Cedex 2, France – sequence: 3 givenname: Evelyne surname: Foerster fullname: Foerster, Evelyne email: e.foerster@brgm.fr organization: BRGM, BP 6009, 45060 Orléans Cedex 2, France – sequence: 4 givenname: Dimitri surname: Komatitsch fullname: Komatitsch, Dimitri email: dimitri.komatitsch@univ-pau.fr organization: University of Pau, CNRS UMR 5212 MIGP, INRIA Bordeaux Sud-Ouest Magique-3D Project, 64013 Pau, France – sequence: 5 givenname: Jean surname: Roman fullname: Roman, Jean email: Jean.Roman@inria.fr organization: INRIA Bordeaux Sud-Ouest HiePACS Project, PRES de Bordeaux, CNRS UMR 5800 LaBRI, 33405 Talence Cedex, France |
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| Keywords | Finite-element method Parallel sparse direct solver Seismic numerical simulation Nonlinear soil behaviour |
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| SubjectTerms | Computer simulation Finite-element method Mathematical analysis Mathematical models Media Methodology Nonlinear soil behaviour Nonlinearity Parallel sparse direct solver Seismic numerical simulation Seismic waves Wave propagation |
| Title | High-performance finite-element simulations of seismic wave propagation in three-dimensional nonlinear inelastic geological media |
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