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A CAD-oriented parallel-computing design framework for shape and topology optimization of arbitrary structures using parametric level set
DOI:10.1016/j.cma.2024.117292.png)
摘要
En 中文
Recently, the high-resolution topology optimization to promote engineering applicability has gained much more attentions. However, an accurate and highly-efficient design framework for implementing shape and topology optimization of engineering structures with integration of CAD model is still in demand. In the current work, the critical intention is to develop a CAD-oriented parallel-computing design framework for arbitrary structures, where the Parametric Level Set Method (PLSM) is employed for shape and topology optimization. Firstly, an implicit identification model is constructed for generating a signed distance field using the vertex and normal information from the 'STL' file of engineering structures. The signed distance field is combined with the compactly supported radial basis functions (CSRBFs) to solve the initial level set function with a parametrization. This method is applied to present all domains, including design domains, Neumann boundary domains, Dirichlet boundary domains, and non-design domains. Secondly, the CPU parallel strategy is considered for allocating partitions of structural stiffness matrix in finite element analysis to different CPU cores for the parallel-computing to save computation costs. Thirdly, a parallel-computing design formulation is developed for performing shape and topology optimization of arbitrary structures, in which the partitioned terms of all design variables and stiffness matrix are concurrently computed on each CPU core. Finally, several classic benchmarks and the critical engineering structure of Virtual Reality (VR) glass part with extremely complex geometries, are discussed to demonstrate the effectiveness and efficiency of the proposed design framework.
Keyword:
High-resolution topology optimization
Parametric level set method
Parallel computation
Large-scale structures
CAD
期刊
IF:
7.3
论文数:
1.3W
被引数:
5.6W
机构
引用论文
Parametric structural shape & topology optimization with a variational distance-regularized level set method变分距离正则化水平集方法的参数化结构形状和拓扑优化
CPU parallel-based adaptive parameterized level set method for large-scale structural topology optimization大规模结构拓扑优化的CPU并行自适应参数化水平集方法
Parallel framework for topology optimization using the method of moving asymptotes使用移动渐近线方法进行拓扑优化的并行框架

