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Frequency-dependent Seismic Anisotropy of Porous Rocks with Penny-shaped Cracks

机译:竹enny状多孔岩石的频变地震各向异性

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Porous reservoirs with aligned fractures exhibit frequency-dependent seismic anisotropy because of wave-induced fluid flow between pores and fractures. To relate the elastic properties of porous rocks with aligned fractures at low frequency, we use the linear slip model of fractures and anisotropic Gassmann fluid substitution. We combine this low-frequency anisotropic Gassmann model with a dispersion relationship, based on a penny-shaped crack model of fractures, to account for frequency-dependent anisotropy. The combined model is validated using experimental measurements of angle-dependent wave velocities of synthetic porous sandstone with aligned disc-shaped cracks. For the low-frequency anisotropic Gassmann model, the agreement between the measured and predicted velocities is reasonably good for both 5-wave velocities, but P-wave anisotropy is overestimated by approximately 25%. This quantitative difference can be explained by fluid diffusion effects occurring at the relatively high frequencies used in the experiment (100 kHz), which are not accounted for by the low-frequency assumption of anisotropic Gassmann theory. The predictions of the combined frequency-dependent model, which considers this effect, give very good agreement with measured velocities.
机译:裂缝对准的多孔储层由于孔隙和裂缝之间的波致流体流动而表现出频率相关的地震各向异性。为了在低频下将多孔岩石的弹性与对齐的裂缝联系起来,我们使用裂缝的线性滑动模型和各向异性的加斯曼流体替代。我们将这种低频各向异性Gassmann模型与色散关系相结合(基于裂缝的便士形裂缝模型),以解决与频率有关的各向异性。结合模型的实验结果验证了合成多孔砂岩具有对准的盘状裂纹的角度相关波速的测量结果。对于低频各向异性Gassmann模型,对于5波速度,实测速度与预测速度之间的一致性相当好,但P波各向异性被高估了大约25%。这种数量上的差异可以通过在实验中使用的相对较高的频率(100 kHz)发生的流体扩散效应来解释,而各向异性的Gassmann理论的低频假设并未解释这点。考虑到这种影响的组合频率相关模型的预测与测得的速度非常吻合。

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