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Adaptive topology optimization with independent error control for separated displacement and density fields

机译:具有独立误差控制的自适应拓扑优化,用于分离的位移场和密度场

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This paper proposes a new adaptive method for topology optimization of structures, by using independent error control for the separated displacement and material density fields. Since the arrangement of the density points is unnecessarily associated with the analysis mesh in the topology optimization based on analysis-separated density interpolation, the refinements of each field can be separately implemented. Here, the analysis mesh is refined to improve the computational accuracy of the displacement field and the associated strain field within certain local regions (e.g. the regions around concentrated loading points and displacement restrictions), while the density field is refined in the regions between fully solid and void phases to improve the geometrical description quality of design boundaries. With such a strategy, the refinements of the analysis mesh and the density field are naturally separated and not bond together anymore. Actually, each refinement process is independently performed only when and where necessary. Numerical examples show that the proposed method can achieve high-quality and high-accuracy optimal solutions comparable to those obtained with fixed globally fine analysis meshes and fine distributed density points, but with much less computational cost.
机译:通过对分离的位移和材料密度场采用独立的误差控制,提出了一种新的自适应拓扑优化方法。由于在基于分析分离的密度插值的拓扑优化中,密度点的排列与分析网格不必要地相关联,因此可以分别实现每个字段的细化。在这里,分析网格被细化以提高某些局部区域(例如,集中载荷点附近的区域和位移约束)内的位移场和相关应变场的计算精度,而在完全实体之间的区域中细化密度场。空隙阶段可改善设计边界的几何描述质量。通过这种策略,分析网格的细化和密度场自然分离,不再结合在一起。实际上,每个细化过程仅在必要时和必要时才独立执行。数值算例表明,与固定全局精细分析网格和精细分布密度点所获得的方法相比,该方法可以实现高质量,高精度的最优解,但是计算成本却低得多。

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