渗透率演变的速度依赖性及流体压力异质性对长马溪页岩摩擦稳定性的影响

IF 3.7 2区 工程技术 Q3 ENGINEERING, ENVIRONMENTAL
Chengxing Zhao, Jianfeng Liu, Jinbing Wei, Hangyu Dai, Chunyu Gao, Huining Xu, Wen Zhong
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引用次数: 0

摘要

断层裂缝的渗透率演化与滑移速度的变化密切相关,高压流体分布的变化也影响摩擦稳定性。以龙马溪页岩锯切裂缝为研究对象,在等速和阶梯速度下进行了摩擦实验,分析了摩擦-渗透率演化规律以及渗透率与速度的关系。利用COMSOL多物理场软件恢复不同条件下页岩裂缝流体压力分布,重点研究流体压力非均质性对龙马溪页岩摩擦稳定性的影响。结果表明:龙马溪页岩锯切裂缝渗透率总体上呈现出滑移速度切换的增强趋势;然而,切换滑移速度对渗透率演化的累积影响相对较弱,渗透率仍随剪切位移而降低。随着摩擦状态参数(a-b)的减小,渗透率响应参数λ整体增大,并随注入压力、法向应力和有效法向应力呈规律性变化。此外,流体压力非均质性受注入压力和正应力的影响。随着注入压力的增大,流体压力分布的非均质性增强,导致非均质摩擦现象更加明显,迫使龙马溪页岩呈现速度弱化特征。在研究流体注入作用下各类岩石的摩擦稳定性时,必须分析流体压力的实际分布,才能全面揭示流体注入对岩石摩擦稳定性的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Velocity dependence of permeability evolution and the effect of fluid pressure heterogeneity on frictional stability of longmaxi shale

The permeability evolution of faults and fractures is closely related to variations in slip velocity, while changes in high-pressure fluid distribution also affect the frictional stability. Here we conducted friction experiments on Longmaxi shale sawcut fractures at constant and step velocities to analyze the friction-permeability evolution and the velocity dependence of permeability. We then used COMSOL multiphysics software to recover the fluid pressure distribution along shale fractures under different conditions, focusing on the effects of fluid pressure heterogeneity on the frictional stability of Longmaxi shale. The results show that the permeability of Longmaxi shale sawcut fractures exhibits an overall enhancement with slip velocity switching. However, the cumulative effect of switching slip velocity on permeability evolution is relatively weak, and permeability still decreases with shear displacement. The permeability response parameter λ increases overall as the friction state parameter (a-b) decreases, exhibiting regular changes with injection pressure, normal stress, and effective normal stress. Additionally, fluid pressure heterogeneity is influenced by both injection pressure and normal stress. Increasing injection pressure amplifies the heterogeneity of fluid pressure distribution, leading to a more significant heterogeneous friction phenomenon, forcing the Longmaxi shale to exhibit velocity-weakening behavior. When studying the frictional stability of various types of rocks under fluid injection, it is essential to analyze the actual distribution of fluid pressure to reveal the influence of fluid injection comprehensively.

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来源期刊
Bulletin of Engineering Geology and the Environment
Bulletin of Engineering Geology and the Environment 工程技术-地球科学综合
CiteScore
7.10
自引率
11.90%
发文量
445
审稿时长
4.1 months
期刊介绍: Engineering geology is defined in the statutes of the IAEG as the science devoted to the investigation, study and solution of engineering and environmental problems which may arise as the result of the interaction between geology and the works or activities of man, as well as of the prediction of and development of measures for the prevention or remediation of geological hazards. Engineering geology embraces: • the applications/implications of the geomorphology, structural geology, and hydrogeological conditions of geological formations; • the characterisation of the mineralogical, physico-geomechanical, chemical and hydraulic properties of all earth materials involved in construction, resource recovery and environmental change; • the assessment of the mechanical and hydrological behaviour of soil and rock masses; • the prediction of changes to the above properties with time; • the determination of the parameters to be considered in the stability analysis of engineering works and earth masses.
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