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Dynamic bulk and shear moduli due to grain-scale local fluid flow in fluid-saturated cracked poroelastic rocks: Theoretical model

机译:流体饱和裂隙多孔弹性岩石中颗粒尺度局部流体流动引起的动态体积和剪切模量:理论模型

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摘要

Grain-scale local fluid flow is an important loss mechanism for attenuating waves in cracked fluid-saturated poroelastic rocks. In this study, a dynamic elastic modulus model is developed to quantify local flow effect on wave attenuation and velocity dispersion in porous isotropic rocks. The Eshelby transform technique, inclusion-based effective medium model (the Mori-Tanaka scheme), fluid dynamics and mass conservation principle are combined to analyze pore-fluid pressure relaxation and its influences on overall elastic properties. The derivation gives fully analytic, frequency-dependent effective bulk and shear moduli of a fluid-saturated porous rock. It is shown that the derived bulk and shear moduli rigorously satisfy the Biot-Gassmann relationship of poroelasticity in the low-frequency limit, while they are consistent with isolated-pore effective medium theory in the high-frequency limit. In particular, a simplified model is proposed to quantify the squirt-flow dispersion for frequencies lower than stiff-pore relaxation frequency. The main advantage of the proposed model over previous models is its ability to predict the dispersion due to squirt flow between pores and cracks with distributed aspect ratio instead of flow in a simply conceptual double-porosity structure. Independent input parameters include pore aspect ratio distribution, fluid bulk modulus and viscosity, and bulk and shear moduli of the solid grain. Physical assumptions made in this model include (1) pores are inter-connected and (2) crack thickness is smaller than the viscous skin depth. This study is restricted to linear elastic, well-consolidated granular rocks.
机译:粒度局部流体流动是衰减破裂的饱和流体孔隙弹性岩石中波的重要损耗机制。在这项研究中,建立了一个动态弹性模量模型来量化局部流动对多孔各向同性岩石中波衰减和速度色散的影响。结合Eshelby变换技术,基于包含物的有效介质模型(Mori-Tanaka方案),流体动力学和质量守恒原理,分析了孔隙流体压力松弛及其对整体弹性特性的影响。该推导给出了流体饱和多孔岩石的完全解析的,与频率相关的有效体积和剪切模量。结果表明,导出的体积模量和剪切模量在低频范围内严格满足Biot-Gassmann孔隙弹性的Biot-Gassmann关系,而在高频范围内与孤立孔有效介质理论相一致。特别是,提出了一种简化模型来量化低于刚性孔弛豫频率的喷水流色散。与以前的模型相比,所提出的模型的主要优点在于它能够预测由于孔隙和裂缝之间的喷流而产生的分散,长宽比比简单的概念上的双孔隙结构要大。独立的输入参数包括孔隙纵横比分布,流体体积模量和粘度以及固体颗粒的体积模量和剪切模量。在此模型中做出的物理假设包括:(1)孔隙相互连接,(2)裂纹厚度小于粘性表皮深度。本研究仅限于线性弹性,固结度好的颗粒岩。

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  • 作者单位

    Department of Astronautics and Mechanics, Harbin Institute of Technology, P. O. Box 344, Harbin 150001, PR China;

    Department of Astronautics and Mechanics, Harbin Institute of Technology, P. O. Box 344, Harbin 150001, PR China;

    Department of Civil and Environmental Engineering and Department of Mechanical Engineering, Northwestern University, Evanston, IL 60208, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Porous rocks; Eshelby transform; Squirt flow; Wave attenuation; Mori-Tanaka Scheme;

    机译:多孔岩石Eshelby转换;喷流波衰减;森田中计划;
  • 入库时间 2022-08-18 02:59:53

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