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Sliding and rolling constitutive theory for granular materials

机译:粒状材料的滚动本构理论

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摘要

By analyzing a microelement based on four spheres, equations governing the equilibrium of the microelement are developed. By examining these equations more closely, two primary mechanisms of failure of the microelements, one based on particle sliding and the other based on particle rolling, are identified. For each primary mechanism, two separate mechanisms, one based on collapse of the microelement in the vertical direction and the other based on collapse in the horizontal direction, are recognized. With the aid of these concepts, constitutive equations are developed for a two-dimensional assembly of granular particles. The assembly is considered to consist of four-sphere microelements. Taking the plastic strain to be a consequence of the collapse of some of the microelements, equations are developed for plastic strain. The formulation yields loading criteria and flow directions. With suitable hardening rules, it is shown that the microstructural model is capable of simulating most of the salient features of the stress-strain behavior of granular materials. In particular, the stress-dilatancy relation, taking into consideration phenomena of phase transformation, and critical state failure are simulated satisfactorily.
机译:通过分析基于四个球体的微量元素,建立了控制微量元素平衡的方程。通过更仔细地检查这些方程式,可以确定微量元素的两种主要失效机理,一种是基于颗粒滑动,另一种是基于颗粒滚动。对于每个主要机制,都可以识别两个单独的机制,一个基于在垂直方向上的微塌陷,另一个基于在水平方向上的塌陷。借助于这些概念,本构方程被开发用于颗粒颗粒的二维组装。该组件被认为是由四个球形的微量元素组成。考虑到塑性应变是某些微量元素坍塌的结果,开发了塑性应变方程。该配方产生加载标准和流向。通过适当的硬化规则,表明了微观结构模型能够模拟颗粒材料应力-应变行为的大多数显着特征。特别是,令人满意地模拟了应力-剪胀关系,并考虑了相变现象和临界状态破坏。

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