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Selecting a suitable time step for discrete element simulations that use the central difference time integration scheme

机译:为使用中心差时间积分方案的离散元素仿真选择合适的时间步长

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The distinct element method as proposed by Cundall and Strack uses the computationally efficient, explicit, central difference time integration scheme. A Emitation of this scheme is that it is only conditionally stable, so small time steps must be used. Some researchers have proposed using an implicit time integration scheme to avoid the stability issues arising from the explicit time integrator typically used in these simulations. However, these schemes are computationally expensive and can require a significant number of iterations to form the stiffness matrix that is compatible with the contact state at the end of each time step. In this paper, a new, simple approach for cakulating the critical time increment in explicit discrete ekment simulations is proposed. Using this approach, it is shown that the critical time increment is a function of the current contact conditions. Considering both two- and three-dimensional scenarios, the proposed refined estimates of the critical time step indicate that the earlier recommendations contained in the literature can be unconservative, in that they often overestimate the actual critical time step. A three-dimensional simulation of a problem with a known analytical solution illustrates the potential for erroneous results to be obtained from discrete ekment simulations, if the time-increment exceeds the critical time step for stable analysis.
机译:Cundall和Strack提出的独特元素方法使用计算效率高,显式的中央时差积分方案。该方案的一个模仿是它仅在条件上稳定,因此必须使用较小的时间步长。一些研究人员提出使用隐式时间积分方案来避免由这些模拟中通常使用的显式时间积分器引起的稳定性问题。然而,这些方案在计算上是昂贵的,并且可能需要大量的迭代来形成与每个时间步长结束时的接触状态兼容的刚度矩阵。本文提出了一种新的,简单的方法来计算显式离散ekment仿真中的临界时间增量。使用这种方法,表明临界时间增量是当前接触条件的函数。考虑到二维和三维情况,建议的关键时间步长的改进估计值表明,文献中包含的较早建议可能并不保守,因为它们经常高估了实际关键时间步长。使用已知的分析解决方案对问题进行的三维模拟说明,如果时间增量超过了稳定分析的关键时间步长,则可能会从离散的ekment模拟中获得错误结果。

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