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A meshless method for multi-material topology optimization based on the alternating active-phase algorithm
DOI:10.1007/s00366-017-0503-4.png)
摘要
En 中文
In this work, a meshless method based on the alternating active-phase algorithm is proposed for the multi-material topology optimization problems. Mathematic model of the proposed method is built by the solid isotropic microstructure with penalization (SIMP) theory and solved by the optimality criteria. During the optimization process, the nodal relative density is chosen as the design variable and Shepard interpolation combined with the moving least squares (MLS) shape function is utilized to obtain the nodal relative density. Nodal integration method is then adopted to obtain the structural stiffness matrix, with the purpose of promoting the computational efficiency. Since the element-free Galerkin (EFG) method is applied to analyze the structure, sensitivity filtering is avoided and mesh-dependence phenomena are alleviated. Several numerical examples are provided to illustrate the validity and feasibility of the proposed method.
Keyword:
Multi-material structures
Topology optimization
Element-free Galerkin (EFG) method
Solid isotropic microstructure with penalization (SIMP)
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期刊
IF:
4.9
论文数:
2.6K
被引数:
9.3K
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Optik
IF0
Bi-directional evolutionary topology optimization of continuum structures with one or multiple materials具有一种或多种材料的连续体结构的双向进化拓扑优化

