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An energy-conserving contact theory for discrete element modelling of arbitrarily shaped particles: Basic framework and general contact model

机译:任意形状粒子离散元素建模的节能接触理论:基本框架和一般接触模型

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The first paper of this series establishes a unified theoretical framework that lays a solid foundation for developing energy-conserving normal contact models for arbitrarily shaped bodies in the discrete element method. It is derived based solely on the requirement that the potential energy must be conserved for an elastic impact of two shapes under any condition. The resulting general energy-conserving contact model states that the normal force as a vector must be the gradient of a contact potential field. When such a contact potential or energy function is specified, a complete normal contact model for a pair of arbitrarily shaped particles, including the contact normal direction, contact point/line and force magnitude, will be automatically followed without introducing any additional assumptions. In this framework, the contact geometry and contact force are indispensably related and are evaluated in a consistent manner. Due to the paramount role that the energy function plays in the current theory, its fundamental properties are discussed, which serve as general guidance for choosing a valid energy function. In addition, both single and multiple contacts and their evolution can be handled in a seamless way. Some symmetric properties of particle shapes can also be utilised to simplify the contact models. Within the proposed theoretical framework, different choices or combinations of geometric features as variables for the contact energy function can give rise to unique types of energy-conserving contact models with distinct characteristics and features. Two such functions using only one primary feature, which lead to two specialised energy-conserving contact models, will be presented in the subsequent papers of this series.(C) 2020 Elsevier B.V. All rights reserved.
机译:本系列的第一篇论文建立了一个统一的理论框架,为在离散元件方法中为任意形状的常规主体开发节能正常接触型号的坚实基础。它完全基于要求在任何条件下都必须保存势能的潜在能量的弹性冲击。由此产生的一般节能接触模型指出,作为载体的法向力必须是接触电势场的梯度。当指定这种接触电位或能量功能时,将自动遵循一对任意形状颗粒的完整正常接触型号,包括接触正常方向,接触点/线和力幅度,而不会引入任何额外的假设。在该框架中,接触几何形状和接触力是必不可少的相关性,并以一致的方式评估。由于能量函数在当前理论中扮演的最重要的作用,讨论了其基本属性,其作为选择有效能量函数的一般指导。此外,单一和多个触点和它们的演化都可以以无缝方式处理。还可以利用一些粒子形状的对称性质来简化接触模型。在提出的理论框架内,与接触能功能的变量的不同选择或几何特征组合可以引起独特的节能接触模型,具有不同的特性和特征。两种主要特征的两种功能将在本系列的后续文件中提出。(c)2020 Elsevier B.v.保留所有权利。

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