原位应力作用下饱和正交各向异性介质中粘性非焊接界面地震响应的精确方程

IF 1.8 3区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Zihang Fan, Zhaoyun Zong
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引用次数: 0

摘要

深部高压油气藏是地下资源勘探的重点研究领域。岩石中地层压力、各向异性和流体饱和度的复杂混合导致地震响应不明确和波传播的不确定性。利用声弹性理论,在弱各向异性假设下,推导了应力正交各向异性介质的弹性参数方程。这些方程使用各向异性参数来描述正交各向异性介质的无应力弹性特性。然后,利用Gassmann方程和低频孔隙弹性理论,求出单流体饱和正交各向异性介质的弹性参数。非焊接界面可以作为微小裂缝的合理近似,并且在地下地层中普遍存在,并且这些界面内存在的粘性流体有助于观察到地震波的衰减。利用应力饱和正交各向异性介质的弹性参数,基于线性滑移理论建立了这些界面的反射系数和透射系数方程。利用这些方程,我们分析了应力、流体饱和度和界面变化对地震响应和波传播的影响。然后,我们分析了频率、孔隙度、粘度、裂缝弱度和其他物理性质如何影响介质内部和界面的地震行为。通过建立精确方程,我们实现了更真实的地下地震反应模拟。这种模拟精度的提高有助于更深入地理解在深层和复杂的地下储层中观察到的地震响应模式。为实际地下储层场景下的流体识别和储层预测提供了坚实的理论基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exact Equation for Seismic Response of Viscous Non-Welded Interface in Saturated Orthotropic Media Under the In Situ Stress

Deep-strata high-pressure reservoirs are a key research area in subsurface resource exploration. The complex mix of in situ pressure, anisotropy and fluid saturation in rocks leads to unclear seismic responses and uncertainties in wave propagation. Using acoustoelasticity theory and assuming weak anisotropy, we derived equations for the elastic parameters of stressed orthotropic media. These equations use anisotropic parameters to describe the unstressed elastic properties of orthotropic media. Then, using the Gassmann equation and low-frequency poro-elasticity, we found elastic parameters for single fluid-saturated orthotropic media. Non-welded interfaces serve as a reasonable approximation for tiny fractures and are ubiquitous in subsurface formations, and the viscous fluid present within these interfaces contributes to the observable attenuation of seismic waves. Using elastic parameters of stressed, fluid-saturated orthotropic media, we formulated reflection and transmission coefficient equations for these interfaces based on linear-slip theory. Using these equations, we analysed how stress, fluid saturation and interface changes affect seismic response and wave propagation. We then analysed how frequency, porosity, viscosity, fracture weakness and other physical properties affect seismic behaviour within and at the medium's interface. By constructing exact equations, we have achieved a more realistic simulation of subsurface seismic response. This enhancement in simulation accuracy facilitates a deeper understanding of the seismic response patterns observed in deep and complex subsurface reservoirs. Furthermore, it provides a solid theoretical foundation for fluid identification and reservoir prediction in actual subsurface reservoir scenarios.

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来源期刊
Geophysical Prospecting
Geophysical Prospecting 地学-地球化学与地球物理
CiteScore
4.90
自引率
11.50%
发文量
118
审稿时长
4.5 months
期刊介绍: Geophysical Prospecting publishes the best in primary research on the science of geophysics as it applies to the exploration, evaluation and extraction of earth resources. Drawing heavily on contributions from researchers in the oil and mineral exploration industries, the journal has a very practical slant. Although the journal provides a valuable forum for communication among workers in these fields, it is also ideally suited to researchers in academic geophysics.
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