Anisotropic P-SV-wave dispersion and attenuation due to inter-layer flow in thinly layered porous rocks

被引:70
作者
Krzikalla, Fabian [1 ]
Mueller, Tobias M. [2 ]
机构
[1] Stanford Univ, Dept Geophys, Stanford, CA 94305 USA
[2] CSIRO, CESRE, Kensington, NSW, Australia
关键词
SEISMIC ATTENUATION; ELASTIC-WAVES; MODEL; PROPAGATION; FRACTURES; VELOCITY; MEDIA;
D O I
10.1190/1.3555077
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Elastic upscaling of thinly layered rocks typically is performed using the established Backus averaging technique. Its poroelastic extension applies to thinly layered fluid-saturated porous rocks and enables the use of anisotropic effective medium models that are valid in the low- and high-frequency limits for relaxed and unrelaxed pore-fluid pressures, respectively. At intermediate frequencies, wave-induced interlayer flow causes attenuation and dispersion beyond that described by Biot's global flow and microscopic squirt flow. Several models quantify frequency-dependent, normal-incidence P-wave propagation in layered poroelastic media but yield no prediction for arbitrary angles of incidence, or for S-wave-induced interlayer flow. It is shown that generalized models for P-SV-wave attenuation and dispersion as a result of interlayer flow can be constructed by unifying the anisotropic Backus limits with existing P-wave frequency-dependent interlayer flow models. The construction principle is exact and is based on the symmetry properties of the effective elastic relaxation tensor governing the pore-fluid pressure diffusion. These new theories quantify anisotropic P- and SV-wave attenuation and velocity dispersion. The maximum SV-wave attenuation is of the same order of magnitude as the maximum P-wave attenuation and occurs prominently around an angle of incidence of 45 degrees. For the particular case of a periodically layered medium, the theoretical predictions
引用
收藏
页码:WA135 / WA145
页数:11
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