[1] Crampin S, Evans R, Atkinson B K. Earthquake prediction: A new physical basis[J]. Geophys J R Astron Soc, 1984a, 76: 147-15. [2] Crampin S, Gao Y. Two species of microcracks[J]. Applied Geophysics. 2014, 11(1): 1-8. [3] 高原, 郑斯华, 孙勇. 唐山地区地壳裂隙各向异性[J]. 地震学报, 1995, 17(3): 283-293. [4] Gao Y, Wu J, Fukao Y, et al. Shear-wave splitting in the crust in North China: stress, faults and tectonic implications[J]. Geophys J Int, 2011, 187(2): 642-654. DOI: 10.1111/j.1365-246X.2011.05200.x. [5] Peng Z G, Ben-Zion Y. Systematic analysis of crustal anisotropy along the Karadere-Duzce branch of the North Anatolian fault[J]. Geophys J Int, 2004, 159: 253-272. [6] Peng Z G, Ben-Zion Y. Spatiotemporal variations of crustal anisotropy from similar events in aftershocks of the 1999 M7.4 Izmit and M7.1 Düzce, Turkey, earthquake sequences[J]. Geophys J Int, 2005, 160: 1027-1043. [7] Cochran E S, Li Y G, Vidale J E. Anisotropy in the shallow crust observed around the San Andress Fault before and after the 2004 M6.0 Parkfield earthquake[J]. Bull Seism Soc Am, 2006, 96: S364-S375 . [8] 石玉涛, 高原, 张永久, 等. 松潘—甘孜地块东部、 川滇地块北部与四川盆地西部的地壳剪切波分裂[J]. 地球物理学报, 2013, 56(2): 481-494. [9] 石玉涛, 高原, 赵翠萍, 等. 汶川地震余震序列的地震各向异性[J]. 地球物理学报, 2009, 52(2): 398-407. [10] Wu J, Gao Y, Chen, Y T. Shear-wave splitting in the crust beneath the southeast Capital area of North China[J]. J Seismol, 2009, 13: 277-286. [11] Maupin V, Park J. Chapter 1.09 Theory and Observations-Wave Propagation in Anisotropic Media. In: Treatise on Geophysics, Vol1: Seismology and Structure of the Earth[M]. (Eds. A.M. Dziewonski, B. Romanowicz), Elsevier, 2007, 289-321. [12] Crampin S. Effective anisotropic elastic-constants for wave propagation through cracked solids[J]. Geophys J R astron Soc, 1984b, 76: 135-145. [13] Orszag S A. Comparison of pseudospectral and spectral approximation[J]. Stu App1 Math, 1972, 51: 253-259. [14] Tessmer E, Kosloff D. 3-D elastic modeling with surface topography by a Chebyshev spectral method[J]. Geophysics, 1994, 59: 464-473. [15] Wang Y, Takenaka H, Furumura T. Modelling seismic wave propagation in a two-dimensional cylindrical whole earth model using the pseudospectral method[J]. Geophys J Int, 2001, 145: 689-708. [16] Huang Q H, Li Z H, Wang Y B. A parallel 3-D staggered grid pseudospectral time domain method for ground-penetrating radar wave simulation[J]. J Geophys Res, 2010, 115: B12101, doi: 10.1029/2010JB007711. [17] Liu Q H. The PSTD algorithm: a time-domain method requiring only two cells per wave-length, Microwave Opt[J]. Tech Lett, 1997, 15(3): 158-165. [18] Liu L B, Xiao L, Liu H, et al. Numerical simulation of the effect of a DC electric field on seismic wave propagation with the pseudospectral time domain method[J]. Pure and Applied Geophysics, 2006, 163(9): 1893-1913. [19] 侯安宁, 等. 各向异性介质中弹性波传播特征的伪谱法模拟研究[J]. 石油物探, 1995, 34(2): 36-45. [20] Ergintav S, Canitez N. Modeling of multi-scale media in discrete form[J]. J Seis Expl, 1997, 6: 77-96. [21] Furumura T, Kennett B L N, Furumura M. Seismic wave field calculation for laterally heterogeneous whole earth models using the pseudospectral method[J]. Geophys J Int, 1998, 135: 845-860. [22] Thomsen L. Weak elastic anisotropy[J]. Geophysics, 1986, 51(10): 1954-1996. [23] Andreas Rüger. P-wave reflection coefficients for transversely isotropic models with vertical and horizontal axis of symmetry[J]. Geophysicists. 1997, 62(3); 713-722. |