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A numerical shakedown analysis method for strength evaluation coupling with kinematical hardening based on two surface model

机译:基于两种表面模型的动力学硬化强度评价耦合的数值升降分析方法

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The current research utilizes an efficient shakedown computation technique to determine the load-bearing capacity of a structure. It can predict the strengths of a structure under arbitrary varying loads where failure form of alternate plasticity and incremental collapse will be avoided. To achieve a realistic result, a kinematical hardening material model is formulated into the shakedown analysis based on Melan's static theorem using a two-surface model so that both incremental collapse and alternating plasticity can be captured. Thus it leads to a nonlinear convex optimization problem which later reformulated to an efficient form for numerical computation. In contrast to the results of benchmark examples for a steel hollow section bar and a plate with hole, the present method is well suited to determine the limit and shakedown states of these two problems especially for a large scale case. Specifically, the present approach does not require full loading history. In order to better illustrate the computing power potential of this algorithm, the proposed technique is also utilized to determine the load-bearing capacity of a cast aluminum beam to be used in a high-speed train. In addition to constructing the plastic and shakedown domain, the proposed approach is also employed to study how kinematical hardening material model influences the feasible load domains.
机译:目前的研究利用高效的Shakedrown计算技术来确定结构的承载能力。它可以预测任意变化负载下的结构的强度,其中避免了替代塑性的失效形式和增量塌陷。为了实现现实的结果,使用双面模型基于Melan的静态定理,将运动淬火材料模型配制到Shakingown分析中,从而可以捕获增量塌陷和交替可塑性。因此,它导致非线性凸优化问题,后来重新重新重新重新重新设计以进行数值计算。与钢中空段杆的基准示例的结果相反,本方法非常适合于确定这两个问题的极限和攀下的状态,特别是对于大规模的情况。具体地,本方法不需要完全加载历史。为了更好地说明该算法的计算电力电位,还用于确定铸铝梁的承载能力以便以高速列车用于高速列车。除了构建塑料和振动域之外,还采用了所提出的方法来研究电脑硬化材料模型如何影响可行的载体域。

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