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ELASTIC WAVES IN FINELY LAYERED SEDIMENTS - THE EQUIVALENT MEDIUM AND GENERALIZED ODOHERTY-ANSTEY FORMULAS

机译:精细分层沉积物中的弹性波-等效介质和广义的不对称性-焓公式

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We study the influence of elastic 1-D inhomogeneous random media (e.g., finely layered media with variable density and shear and compressional velocities) on the kinematics and dynamics of the transmitted obliquely incident P- and SV-plane waves. Multiple scattering (resulting in localization and spatial dispersion of the elastic wavefield) is the main physical effect controlling the properties of the wavefield in such media. We analyze the wave propagation assuming the fluctuations of ve locities and density to be small (of the order of 20% or smaller), We obtain explicit analytic solutions for the attenuation coefficient and phase velocity of the transmitted waves. These solutions are valid for all frequencies. They agree very well with results of numerical modeling. Our theory shows that fine elastic multilayering is characterized by a frequency-dependent anistropy. At typical acquisition frequencies this anisotropy differs significantly from the low-frequency anisotropy described by the well-known Backus averaging. The increase of the phase velocity with frequency is quantified. It can partly explain the difference between well-log-derived velocities and lower frequency seismic velocities [e.g., vertical seismic profiling (VSP) velocities] in terms of localization. The low- and high-frequency asymptotical results for the phase velocity agree with those of Backus averaging and ray approximation, respectively. The theory describes the angle-dependent attenuation caused by multiple scattering. The proposed formulas are simple enough to be used in many practical applications as. e.g., in an amplitude variation with offset (AVO) analysis. They can be implemented for taking into account the angle dependence of transmission effects, or they can be used in an inversion for statistical parameters of sediments. [References: 22]
机译:我们研究了弹性一维非均匀随机介质(例如具有可变密度,剪切速度和压缩速度的精细层状介质)对透射斜入射P平面波和SV平面波的运动学和动力学的影响。多重散射(导致弹性波场的定位和空间分散)是控制此类介质中波场特性的主要物理效应。我们假设速度和密度的波动较小(约为20%或更小),从而分析了波的传播。对于透射波的衰减系数和相速度,我们获得了明确的解析解。这些解决方案适用于所有频率。他们非常赞同数值建模的结果。我们的理论表明,精细的弹性多层结构的特征在于与频率有关的人类行为。在典型的采集频率下,该各向异性与众所周知的Backus平均描述的低频各向异性明显不同。量化了相速度随频率的增加。它可以从局部上解释测井测井速度与低频地震速度之间的差异(例如,垂直地震剖面速度)。相速度的低频和高频渐近结果分别与Backus平均和射线近似的结果一致。该理论描述了由多重散射引起的与角度相关的衰减。所提出的公式足够简单,可以在许多实际应用中使用。例如,在具有偏移的幅度变化(AVO)分析中。可以将它们实现为考虑到传输效应的角度依赖性,或者可以将它们用于反演沉积物的统计参数。 [参考:22]

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