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An energy-conserving contact theory for discrete element modelling of arbitrarily shaped particles: Contact volume based model and computational issues

机译:用于任意形状粒子的离散元素建模的节能接触理论:基于联系卷的模型和计算问题

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The contact volume based energy-conserving contact model is presented in the current paper as a specialised version of the general energy-conserving contact model established in the first paper of this series (Feng, 2020). It is based on the assumption that the contact energy potential is taken to be a function of the contact volume between two contacting bodies with arbitrary (convex and concave) shapes in both 2D and 3D cases. By choosing such a contact energy function, the full normal contact features can be determined without the need to introduce any additional assumptions/parameters. By further exploiting the geometric properties of the contact surfaces concerned, more effective integration schemes are developed to reduce the evaluation costs involved. When a linear contact energy function of the contact volume is adopted, a linear contact model is derived in which only the intersection between two contact shapes is needed, thereby substantially improving both efficiency and applicability of the proposed contact model. A comparison of this linear energy-conserving contact model with some existing models for discs and spheres further reveals the nature of the proposed model, and provides insights into how to appropriately choose the stiffness parameter included in the energy function. For general non-spherical shapes, mesh representations are required. The corresponding computational aspects are described when shapes are discretised into volumetric meshes, while new developments are presented and recommended for shapes that are represented by surface triangular meshes. Owing to its additive property of the contact geometric features involved, the proposed contact model can be conducted locally in parallel using GPU or GPGPU computing without occurring much communication overhead for shapes represented as either a volumetric or surface triangular mesh. A set of examples considering the elastic impact of two shapes are presented to verify the energy-conserving property of the proposed model for a wide range of concave shapes and contact scenarios, followed by examples involving large numbers of arbitrarily shaped particles to demonstrate the robustness and applicability for more complex and realistic problems. (C) 2020 Elsevier B.V. All rights reserved.
机译:基于接触体积的节能接触型号在本纸上介绍,作为本系列的第一纸(Feng,2020)中建立的一般节能接触型号的专业版。基于假设,即在2D和3D例中,接触能量电位被认为是两个接触体之间的接触体积的函数,并且在2D和3D例中具有任意(凸和凹)形状。通过选择这种接触能量函数,可以确定完整的正常接触特征而无需引入任何其他假设/参数。通过进一步利用相关的接触表面的几何特性,开发了更有效的集成方案以降低所涉及的评估成本。当采用接触体积的线性接触能功能时,推导出线性接触模型,其中仅需要两个接触形状之间的交叉点,从而大大提高了所提出的接触模型的效率和适用性。这种线性节能接触模型与用于盘和球体的一些现有模型的这种线性节能接触模型进一步揭示了所提出的模型的性质,并为如何适当地选择能量函数中包括的刚度参数提供有识。对于一般非球形形状,需要网状表示。当形状被离散地被离散到体积网格时描述相应的计算方面,而呈现新的开发,并推荐用于由曲面三角网格表示的形状。由于其涉及的接触几何特征的添加性能,所提出的接触模型可以使用GPU或GPGPU计算并行地进行本地进行,而不会出现诸如体积或表面三角网格的形状的沟通开销。考虑到两种形状的弹性冲击的一组示例是为了验证所提出的凹形和接触方案的所提出模型的节能特性,其次是涉及大量任意形状的颗粒来证明鲁棒性和稳健性的示例适用于更复杂和现实问题。 (c)2020 Elsevier B.v.保留所有权利。

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