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The Transition Between the Scale Domains of Ray and Effective Medium Theory and Anisotropy: Numerical Models

机译:射线尺度域与有效介质理论和各向异性之间的转换:数值模型

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The anisotropy of a periodically layered isotropic medium is numerically modeled in order to study the effect of the scale of heterogeneity on seismic observations. An important motivation is to delineate the wavelength ranges over which a pulse propagating obliquely through the structure will be described by either ray (short wavelength) or effective medium (long wavelength) theory. The same band-limited pulse is propagated obliquely at a variety of incidence angles through a compositionally uniform layered structure as a function of the layer thicknesses. The resulting seismograms display similar behavior to that encountered for normal incidence including the effects of stop- and pass-bands. Velocities determined from time picks on these seismograms show a large difference in velocities between the long and short wavelength limits as has been previously demonstrated for normal incidence propagation. The bulk of the transition between these two limits is independent of incidence angle and occurs when the ratio between the wavelength and the layering thickness is near a value of 10. Two more geologically reasonable models show that these effects are diminished with smaller contrasts between the layers.
机译:为了研究非均质性尺度对地震观测的影响,对周期性分层的各向同性介质的各向异性进行了数值建模。一个重要的动机是描绘将通过射线(短波长)或有效介质(长波长)理论描述倾斜穿过结构传播的脉冲的波长范围。相同的带限脉冲以不同的入射角倾斜地传播,作为层厚度的函数,其在组成上均匀的分层结构中。所得的地震图显示出与法线入射类似的行为,包括阻带和通带的影响。从这些地震图上的时间点确定的速度显示出长波和短波波长极限之间的速度差异很大,如先前针对法向入射传播所证明的那样。这两个极限之间的过渡大部分与入射角无关,并且在波长和分层厚度之间的比率接近于10时发生。另外两个在地质上合理的模型表明,随着层之间较小的反差,这些影响会减小。 。

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