应力轨迹导向结构设计与拓扑优化

Junpeng Wang, Jun Wu, R. Westermann
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引用次数: 2

摘要

利用全局和局部体积约束进行基于密度的拓扑优化是实现轻量化结构自动设计的关键技术。众所周知,刚度优化结构包括空间变化的几何图案,跨越多个长度尺度。然而,拓扑优化的两种变体都面临着有效收敛到这种结构布局的挑战。在本文中,我们研究了由应力轨迹产生的材料布局,即通过跟踪外部载荷下实体设计域的有限元模拟应力轨迹来编制全局一致的结构。从计算的角度来看,这特别有吸引力,因为它避免了涉及精细网格的有限元分析的迭代优化。通过对每条轨迹的厚度进行正则化,利用衍生的应变能测量,可以高效地生成刚性结构布局。然后,我们阐明了在基于密度的拓扑优化中使用所得结构作为初始密度场,即生成一个初始密度场,然后通过拓扑优化进一步优化。我们证明,通过使用应力轨迹引导密度初始化代替均匀密度场,基于密度的拓扑优化中的收敛问题可以在得到的结构布局的可比刚度下显着放松。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stress Trajectory Guided Structural Design and Topology Optimization
Density-based topology optimization using global and local volume constraints is a key technique to automatically design lightweight structures. It is known that stiffness optimal structures comprise spatially varying geometric patterns that span multiple length scales. However, both variants of topology optimization have challenges to efficiently converge to such a structural layout. In this paper, we investigate material layouts that are generated from stress trajectories, i.e., to compile a globally consistent structure by tracing the stress trajectories from finite element simulation of the solid design domain under external loads. This is particularly appealing from a computational perspective, since it avoids iterative optimization that involves finite element analysis on fine meshes. By regularizing the thickness of each trajectory using derived strain energy measures along them, stiff structural layouts can be generated in a highly efficient way. We then shed light on the use of the resulting structures as initial density fields in density-based topology optimization, i.e., to generate an initial density field that is then further optimized via topology optimization. We demonstrate that by using a stress trajectory guided density initialization in lieu of a uniform density field, convergence issues in density-based topology optimization can be significantly relaxed at comparable stiffness of the resulting structural layouts.
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