断层流体力学:从本构模型到摩擦物理

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Filippo Masi, Itai Einav
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引用次数: 0

摘要

速率和状态相关的摩擦规律的发展为断层泥的摩擦行为及其地震周期的关键物理机制提供了重要的见解。然而,过去的方法是专门为解决断层剪切问题而定制的,因此在一般加载条件下,它们能否全面代表断层泥物质存在问题。这项工作建立了一种替代方法,用于开发断层泥的物理摩擦定律,该定律基于双尺度温度下的水动力过程的严密性,通过Terracotta(三轴加载条件下粘土的完全坚固的本构模型)。通过指定直接剪切模型,该方法产生了另一种摩擦定律,可以很容易地捕获断层泥的摩擦动力学,包括断层泥层厚度、正应力和固体分数的明确依赖关系。通过现有的实验室实验验证,摩擦力定律保留了Terracotta在三轴条件下的原始预测能力,并解释了断层泥在直接剪切条件下的速率和状态、扩张行为。最后,当兵马俑摩擦定律与宿主岩石的弹簧阻尼器相连接时,组合模型预测了地震活动开始和随后的弹性积累前兆,其结果与实验证据和现场观察结果密切相关。虽然这项研究的重点是富含粘土的凿槽,但该方法和发现有望为各种材料提供更广泛的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Hydrodynamics of Fault Gouges From Constitutive Modelling to the Physics of Friction

Hydrodynamics of Fault Gouges From Constitutive Modelling to the Physics of Friction

The development of rate- and state-dependent friction laws offered important insights into the key physical mechanisms of the frictional behavior of fault gouges and their seismic cycle. However, past approaches were specifically tailored to address the problem of fault shearing, leaving questions about their ability to comprehensively represent the gouge material under general loading conditions. This work establishes an alternative approach for developing a physical friction law for fault gouges that is grounded on the rigour of the hydrodynamic procedure with two-scale temperatures through Terracotta, a thoroughly robust constitutive model for clay in triaxial loading conditions. By specifying the model for direct shearing, the approach yields an alternative friction law that readily captures the frictional dynamics of fault gouges, including explicit dependencies on gouge layer thickness, normal stress, and solid fraction. Validated against available laboratory experiments, the friction law retains the original predictive capabilities of Terracotta in triaxial conditions and explains the rate-and-state, dilatational behavior of fault gouges in direct shear conditions. Finally, when the Terracotta friction law is connected to a spring-dashpot representation of the host rock, the combined model predicts an elastic buildup precursor to the onset of and subsequent seismicity, with results closely reflecting experimental evidence and field observations. While this study focuses on clay-rich gouges, the approach and findings are expected to offer much wider implications to a variety of materials.

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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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