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首页> 外文期刊>Proceedings of the Royal Society. Mathematical, physical and engineering sciences >Application of discontinuity layout optimization to plane plasticity problems
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Application of discontinuity layout optimization to plane plasticity problems

机译:间断性布局优化在平面塑性问题中的应用

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A new and potentially widely applicable numerical analysis procedure for continuum mechanics problems is described. The procedure is used here to determine the critical layout of discontinuities and associated upper-bound limit load for plane plasticity problems. Potential discontinuities, which interlink nodes laid out over the body under consideration, are permitted to crossover one another giving a much wider search space than when such discontinuities are located only at the edges of finite elements of fixed topology. Highly efficient linear programming solvers can be employed when certain popular failure criteria are specified (e. g. Tresca or Mohr Coulomb in plane strain). Stress/velocity singularities are automatically identified and visual interpretation of the output is straightforward. The procedure, coined 'discontinuity layout optimization' (DLO), is related to that used to identify the optimum layout of bars in trusses, with discontinuities (e. g. slip-lines) in a translational failure mechanism corresponding to bars in an optimum truss. Hence, a recently developed adaptive nodal connection strategy developed for truss layout optimization problems can advantageously be applied here. The procedure is used to identify critical translational failure mechanisms for selected metal forming and soil mechanics problems. Close agreement with the exact analytical solutions is obtained.
机译:描述了一种用于连续体力学问题的新的且可能广泛应用的数值分析程序。在此,该程序用于确定不连续性的关键布局以及平面塑性问题的相关上限载荷。与仅在固定拓扑的有限元边缘处放置时相比,潜在的不连续性(即相互链接的节点布置在所考虑的身体上)可以相互交叉,从而提供更大的搜索空间。当指定了某些常用的失效准则时(例如,平面应变中的Tresca或Mohr Coulomb),可以使用高效的线性规划求解器。应力/速度奇异点会自动识别,并且输出的直观解释非常简单。该过程被称为“不连续性布局优化”(DLO),该过程与用于识别桁架中钢筋的最佳布局的过程有关,该平移失效机制中的不连续性(例如滑移线)对应于最佳桁架中的钢筋。因此,针对桁架布局优化问题而开发的最近开发的自适应节点连接策略可以在这里有利地应用。该程序用于为选定的金属成形和土壤力学问题确定关键的平移破坏机理。获得与确切的分析解决方案的紧密一致。

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