Numerical simulation of crustal deformation using a three-dimensional viscoelastic crustal structure model for the Japanese islands under east-west compression

Author:

Cho Ikuo,Kuwahara Yasuto

Publisher

Springer Science and Business Media LLC

Subject

Space and Planetary Science,Geology

Reference27 articles.

1. Aagaard, B., C. Williams, and M. Knepley, PyLith: A finite-element code for modeling quasi-static and dynamic crustal deformation, Eos Trans. AGU, 88(52), Fall Meet. Suppl., Abstract T21B-0592, 2007.

2. Aagaard, B., C. Williams, and M. Knepley, PyLith: A finite-element code for modeling quasi-static and dynamic crustal deformation, Eos Trans. AGU, 89(53), Fall Meet. Suppl., Abstract T41A-1925, 2008a.

3. Aagaard, B., S. Kientz, M. Knepley, L. Strand, and C. Williams, PyLith user manual version 1.3, Pasadena, CA: Computational Infrastructure of Geodynamics, http://geodynamics.org, 2008b.

4. Aagaard, B. T., M. G. Knepley, and C. A. Williams, A domain decomposition approach to implementing fault slip in finite-element models of quasi-static and dynamic crustal deformation, J. Geophys. Res., 118, 3059–3079, doi:10.1002/jgrb.50217, 2013.

5. Burgmann, R. and G. Dresen, Rheology of the lower crust and upper mantle: Evidence from rock mechanics, geodesy, and field observations, Ann. Rev. Earth Planet. Sci., 36, 531–567, 2008.

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