首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Rate and state frictional and healing behavior of carbonate fault gouge explained using microphysical model
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Rate and state frictional and healing behavior of carbonate fault gouge explained using microphysical model

机译:用微观模型解释碳酸盐岩断层泥的速率和状态摩擦与愈合行为

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Classical rate-and-state friction (RSF) laws are widely applied in modeling earthquake dynamics but generally using empirically determined parameters with little or no knowledge of, or quantitative account for, the controlling physical mechanisms. Here a mechanism-based microphysical model is developed for describing the frictional behavior of carbonate fault gouge, assuming that the frictional behavior seen in lab experiments is controlled by competing processes of rate-strengthening intergranular sliding versus contact creep by pressure solution. By solving the controlling equations, derived from kinematic and energy/entropy balance considerations, and employing a microphysical model for rate-strengthening grain boundary friction plus standard creep equations for pressure solution, we simulate typical lab-frictional tests, namely, "velocity stepping" and "slide-hold-slide" test sequences, for velocity histories and environmental conditions employed in previous experiments. The modeling results capture all of the main features and trends seen in the experimental results, including both steady state and transient aspects of the observed behavior, with reasonable quantitative agreement. To our knowledge, ours is the first mechanism-based model that can reproduce RSF-like behavior in terms of microstructurally verifiable processes and state variables. Since it is microphysically based, we believe that our modeling approach can provide an improved framework for extrapolating friction data to natural conditions.
机译:经典的速率和状态摩擦(RSF)律广泛应用于地震动力学建模,但通常使用经验确定的参数,而对控制物理机制的了解很少或根本不了解或无法定量说明。在这里,建立了一个基于机理的微物理模型来描述碳酸盐岩断层泥的摩擦行为,假设在实验室实验中看到的摩擦行为是由速率强化晶间滑动与压力溶液接触蠕变的竞争过程控制的。通过求解从运动学和能量/熵平衡考虑因素得出的控制方程式,并采用微物理模型进行速率强化晶粒边界摩擦,并使用标准蠕变方程组进行压力求解,我们模拟了典型的实验室摩擦试验,即“速度步进”和“滑动-保持-滑动”测试序列,用于先前实验中使用的速度历史和环境条件。建模结果捕获了实验结果中看到的所有主要特征和趋势,包括观察到的行为的稳态和瞬态方面,并具有合理的定量一致性。就我们所知,我们是第一个基于机制的模型,可以通过可微结构验证的过程和状态变量来重现类似RSF的行为。由于它是基于微观物理的,因此我们相信我们的建模方法可以为将摩擦数据外推到自然条件提供一个改进的框架。

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