饱和多孔周期性层状介质中微观和介观波致流体流动的统一模型

IF 1.8 3区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Jianping Liao, Junxin Guo, Hexiu Liu, Yanbin He, Anyu Li, Liang Cheng, Lin Zhou
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引用次数: 0

摘要

层间介观波致流体流动和喷射流动是流体饱和多孔层状岩石中地震衰减和弥散的两种重要机制。尽管对这两种机制进行了大量的研究,但它们的综合效应(特别是由此产生的频率相关的各向异性特征)尚未得到充分的研究。因此,我们提出了一个简明而严谨的理论模型来量化这两种机制的综合效应。我们首先量化了每一层具有频率依赖性和复值弹性特性的湿岩框架的喷射流效应。然后,应用Biot的准静态孔隙弹性理论,推导出周期性层状岩石有效刚度系数的解析解。利用导出的岩石刚度系数,我们计算了地震衰减和频散,以及频率相关的各向异性。研究了两种情况,一种是水和气交替饱和层(恒定岩石框架性质),另一种是周期性分布的裂缝层(恒定饱和流体性质)。这两种情况下的纵波都受到介观层间波致流体流动和喷射流动的影响。在第一种情况下,sv波仅受喷射流的影响,在第二种情况下,sv波主要受介观层间波诱导的流体流动的影响。第一种情况下的波速和衰减是各向同性的,而第二种情况下的波速和衰减表现出频率相关的各向异性(由介观层间波诱导的流体流动引起)。为了验证我们的模型,我们将我们的模型与不同有效压力下部分饱和砂岩样品的实测拉伸衰减进行了比较。该模型较好地预测了实验中观察到的介观层间波致流体流动和喷射流的联合效应。我们的模型在层状岩石储层(如页岩储层)的地震表征中具有潜在的应用价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unified model for microscopic and mesoscopic wave-induced fluid flow in a fluid-saturated porous periodically layered medium

The interlayer mesoscopic wave-induced fluid flow and the squirt flow are two important mechanisms for seismic attenuation and dispersion in the fluid-saturated porous layered rock. Although numerous studies have been conducted on these two mechanisms, their combined effects (especially the resulting frequency-dependent anisotropy features) have not been sufficiently investigated. Hence, we propose a concise and rigorous theoretical model to quantify the combined effects of these two mechanisms. We first quantify the squirt flow effects through a wet rock frame for each layer that has frequency-dependent and complex-valued elastic properties. Then, we apply Biot's quasi-static poroelasticity theory to derive the analytical solutions for the effective stiffness coefficients of the periodically layered rock. Using the derived rock stiffness coefficients, we calculate the seismic attenuation and dispersion, as well as the frequency-dependent anisotropy. Two cases are studied, one with alternating water- and gas-saturated layers (constant rock frame properties) and the other with periodically distributed fracture layers (constant saturating fluid properties). The P-waves in these two cases are both influenced by the mesoscopic interlayer wave-induced fluid flow and the squirt flow. However, the SV-wave is solely affected by the squirt flow in the first case and primarily influenced by the mesoscopic interlayer wave-induced fluid flow in the second case, respectively. The wave velocity and attenuation in the first case are isotropic, whereas those in the second case exhibit frequency-dependent anisotropy (induced by the mesoscopic interlayer wave-induced fluid flow). To validate our model, we compare our model to the measured extensional attenuation in a partially saturated sandstone sample under different effective pressures. The joint effects of the mesoscopic interlayer wave-induced fluid flow and the squirt flow observed in the experiments are well predicted by our model. Our model has potential applications in the seismic characterization of reservoirs composed of layered rocks, such as shale reservoirs.

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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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