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A Unifying Phase Diagram for the Dynamics of Sheared Solids and Granular Materials

机译:剪切固体和颗粒材料动力学的统一相图

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摘要

We present a simple unifying model that can be used to analyze, within a single framework, different dynamic regimes of shear deformation of brittle, plastic, and granular materials. The basic dynamic regimes seen in the response of both solids and granular materials to slowly increasing loading are scale-invariant behavior with power law statistics, quasi-periodicity of system size events, and persisting long term mode switching between the former two types of response. The model provides universal analytical mean field results on the statistics of failure events in the different regimes and distributed versus localized spatial responses. The results are summarized in a phase diagram spanned by three tuning parameters: dynamic strength change (weakening, neutral or strengthening) during slip events, dissipation of stress transfer (related to the void fraction in granular materials and damaged solids), and the ratio of shear rate over healing rate controlling the regaining of cohesion following failures in brittle solids. The mean field scaling predictions agree with experimental, numerical, and observational data on deformation avalanches of solids, granular materials, and earthquake faults. The model provides additional predictions that should be tested with future observation and simulation data.
机译:我们提出了一个简单的统一模型,该模型可用于在单个框架内分析脆性,塑性和颗粒状材料的剪切变形的不同动态范围。在固体和颗粒状材料对缓慢增加的载荷的响应中看到的基本动力学机制是具有幂律统计的尺度不变行为,系统大小事件的准周期性以及在前两种响应之间持续的长期模式切换。该模型提供了关于在不同状态下的失效事件统计数据以及分布与局部空间响应的统计平均场结果。结果总结在一个包含三个调整参数的相图中:滑移事件期间的动态强度变化(弱化,中性或强化),应力传递的耗散(与颗粒材料和受损固体中的空隙率有关)以及剪切速率超过恢复速率控制脆性固体失效后内聚力的恢复。平均场尺度预测与关于固体,颗粒材料和地震断层的变形雪崩的实验,数值和观测数据一致。该模型提供了其他预测,应该与将来的观察和模拟数据一起进行测试。

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