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An Efficient Structure Stiffness Topology Optimization Strategy under Crash Loads Using Reduced Equivalent Static Loads Method

机译:碰撞载荷下有效的结构刚度拓扑优化策略

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This paper presents a new method using reduced equivalent static loads for structural topology optimization design under crash loads. At each cycle, crash dynamic analysis and static model order reduction are performed to obtain the nonlinear displacement vector and reduction stiffness matrix respectively. Once the RESLs are built by multiplying the reduction stiffness matrix and the nodal displacement vector at the time with maximal internal energy, the size of the equivalent static loads can be reduced and their position can be transferred. The linear static topology optimization is performed under the RESLs, and the optimization results are filtered into a black-white design for the crash simulation to avoid the mesh distortion issue. The process is repeated until the convergence criteria are satisfied. The effectiveness of the proposed method is demonstrated by investing two numerical examples. The results show that the proposed method can effectively improve the numerical stability and convergence, as well as, provide a feasible strategy for the topology optimization design of engineering structures under crash loads.
机译:本文提出了一种在碰撞载荷下采用减小的等效静载荷进行结构拓扑优化设计的新方法。在每个循环中,进行碰撞动态分析和静态模型降阶,分别获得非线性位移矢量和降阶刚度矩阵。一旦通过将此时的折减刚度矩阵和节点位移矢量与最大内部能量相乘来建立RESL,就可以减小等效静载荷的大小,并可以转移它们的位置。在RESL下执行线性静态拓扑优化,并且将优化结果过滤到黑白设计中进行碰撞仿真,以避免网格失真问题。重复该过程,直到满足收敛标准为止。通过投资两个数值例子证明了该方法的有效性。结果表明,所提出的方法可以有效地提高数值稳定性和收敛性,并为碰撞荷载下工程结构的拓扑优化设计提供一种可行的策略。

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