岩石剪切偏置裂隙比刚度与渗透率的共同演化

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Xinxin He, Pengliang Yu, Agathe Eijsink, Chris Marone, Parisa Shokouhi, Jacques Rivière, Shimin Liu, Derek Elsworth
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引用次数: 0

摘要

裂缝和断层是岩体中的软弱面和顺滑面,是微地震和流体运移的焦点,地震活动性与渗透率演化密切相关。接触刚度对应力高度敏感,直接影响渗透性能。采用数值模拟的方法探讨了粗裂缝在正应力和剪切偏置作用下的比刚度和渗透率的共同演化规律。单个粗糙裂缝使用颗粒力学模型用可变振幅(均方根)和波长(λ)表示。接触粗糙表面以剪切方式进行配合、偏移,然后以位移方式进行压实。压实裂缝在接触孔隙度上产生应力依赖的变化,这种变化控制着渗透率和刚度的演化。我们建立了一种通用的无量纲关系,将特定刚度和渗透率联系起来,固有地结合了表面粗糙度、剪切偏移和微裂纹的影响。观察到的裂缝效应——局部应力重分布和压力驱动的微裂纹扩展动态改变了孔径场——在高应力下引入了非线性渗透率响应。增加的粗糙度幅度和更大的剪切偏移量降低了刚度,同时抑制了渗透率对应力的敏感性,表明表面纹理和水力学行为之间存在强烈的相互作用。虽然该模型有效地捕获了这种行为,但由于该极限下的极端孔径灵敏度,在非常低的孔隙率下会出现偏差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Co-Evolution of Specific Stiffness and Permeability of Rock Fractures Offset in Shear

Fractures and faults represent planes of weakness and compliance in rock masses that serve as focal points for both microearthquakes and fluid transport, with seismicity and permeability evolution closely linked. Contact stiffness is highly stress-sensitive and directly influences permeability. We explore the co-evolution of specific stiffness and permeability of rough fractures under normal stress and shear offset using numerical simulations. Individual rough fractures are represented by variable amplitude (Root mean square) and wavelength (λ) using a granular mechanics model. Contacting rough surfaces are mated, offset in shear, and then compacted in displacement mode. The compacting fractures generate stress-dependent changes in contact porosity, which govern both permeability and stiffness evolution. We establish a universal dimensionless relationship linking specific stiffness and permeability that inherently incorporates the effects of surface roughness, shear offset, and microcracking. The observed cracking effect—where local stress redistribution and pressure-driven microcrack propagation dynamically alter the aperture field—introduces a nonlinear permeability response at high stress. Increased roughness amplitude and larger shear offsets reduce stiffness while dampening permeability sensitivity to stress, demonstrating a strong interplay between surface texture and hydro-mechanical behavior. While the model captures this behavior effectively, deviations emerge at very low porosities due to extreme aperture sensitivity in this limit.

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来源期刊
Journal of Geophysical Research: Solid Earth
Journal of Geophysical Research: Solid Earth Earth and Planetary Sciences-Geophysics
CiteScore
7.50
自引率
15.40%
发文量
559
期刊介绍: The Journal of Geophysical Research: Solid Earth serves as the premier publication for the breadth of solid Earth geophysics including (in alphabetical order): electromagnetic methods; exploration geophysics; geodesy and gravity; geodynamics, rheology, and plate kinematics; geomagnetism and paleomagnetism; hydrogeophysics; Instruments, techniques, and models; solid Earth interactions with the cryosphere, atmosphere, oceans, and climate; marine geology and geophysics; natural and anthropogenic hazards; near surface geophysics; petrology, geochemistry, and mineralogy; planet Earth physics and chemistry; rock mechanics and deformation; seismology; tectonophysics; and volcanology. JGR: Solid Earth has long distinguished itself as the venue for publication of Research Articles backed solidly by data and as well as presenting theoretical and numerical developments with broad applications. Research Articles published in JGR: Solid Earth have had long-term impacts in their fields. JGR: Solid Earth provides a venue for special issues and special themes based on conferences, workshops, and community initiatives. JGR: Solid Earth also publishes Commentaries on research and emerging trends in the field; these are commissioned by the editors, and suggestion are welcome.
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