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The GranOO workbench, a new tool for developing discrete element simulations, and its application to tribological problems

机译:GranOO工作台,一种用于开发离散元素模拟的新工具,并将其应用于摩擦学问题

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摘要

Discrete models are based on the descriptions of the physical states (e.g., velocity, position, temperature, magnetic momenta and electric potential) of a large number of discrete elements that form the media under study. These models are not based on a continuous description of the media. Thus, the models are particularly well adapted to describe the evolution of media driven by discontinuous phenomena such as multi-fracturation followed by debris flow as occurs in wear studies.Recently, the use of discrete models has been widened to face problems of complex rheological behaviors and/or multi-physical behaviors. Multi-physical problems involves complex mathematical formulations because of the combination of different families of differential equations when a continuous approach is chosen. These formulas are often much simpler to express in discrete models, in which each particle has a physical state and the evolution of that state is due to local physical interactions among particles. Since the year 2000, this method has been widely applied to the study of tribological problems including wear (Fillot et al., 2007) [1], the thermo-mechanical behavior of a contact (Richard et al., 2008) [2] and subsurface damage due to surface polishing (Iordanoff et al., 2008) [3]. Recent works have shown how this method can be used to obtain quantitative results (André et al., 2012) [4]. To assist and promote research in this area, a free platform GranOO has been developed under a C++ environment and is distributed under a free GPL license. The primary features of this platform are presented in this paper. In addition, a series of examples that illustrate the main steps to construct a reliable tribological numerical simulation are detailed. The details of this platform can be found at http://www.granoo.org.
机译:离散模型基于对构成研究介质的大量离散元素的物理状态(例如速度,位置,温度,磁矩和电势)的描述。这些模型不是基于对媒体的连续描述。因此,这些模型特别适合描述由磨损研究中发生的不连续现象(如多重破裂,随后的泥石流)驱动的介质的演化。最近,离散模型的使用已扩大到面对复杂的流变行为问题和/或多种身体行为。多物理问题涉及复杂的数学公式,因为当选择连续方法时,由于将不同的微分方程族组合在一起。这些公式在离散模型中通常更容易表达,在离散模型中,每个粒子都具有物理状态,并且该状态的演变是由于粒子之间的局部物理相互作用。自2000年以来,该方法已广泛应用于摩擦学问题的研究,包括磨损(Fillot等,2007)[1],接触件的热机械行为(Richard等,2008)[2]。以及由于表面抛光造成的地下破坏(Iordanoff等,2008)[3]。最近的工作表明如何使用该方法获得定量结果(André等,2012)[4]。为了协助和促进这一领域的研究,已经在C ++环境下开发了一个免费平台GranOO,并根据免费GPL许可证进行了分发。本文介绍了该平台的主要功能。此外,还将详细介绍一系列示例,这些示例说明了构建可靠的摩擦学数值模拟的主要步骤。有关该平台的详细信息,请访问http://www.granoo.org。

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