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Multi-scale topology optimization of multi-material structures with controllable geometric complexity - Applications to heat transfer problems

机译:可控制几何复杂度的多材料结构的多尺度拓扑优化-传热问题的应用

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This paper presents a topology optimization method to design assemblies of periodic cellular materials with controllable geometric complexity. The framework is based on a novel multi-scale and multi-material design model in which the structure, the layout of the material subdomains, and their micro-structures are optimized concurrently. To allow a tight control over its geometrical complexity, the layout at the macro-scale is described by level-set fields, parameterized by geometric primitives. The micro-scale geometry is represented through a density approach. A nonlinear programming algorithm drives the optimization process using design sensitivities computed by the discrete adjoint method. The proposed design framework is studied with heat transfer problems. Practical design problems, such as a heat sink and a thermal storage unit with phase change are discussed. The macro-scale analysis model relies on a generalized transient diffusion equation. At the micro-scale, homogenization is used to compute equivalent material properties. The numerical examples show that the optimized multi-scale multi-material layouts outperform the corresponding mono-scale structures while maintaining geometric simplicity at the macro-scale level. (C) 2019 Elsevier B.V. All rights reserved.
机译:本文提出了一种拓扑优化方法,以设计具有可控几何复杂度的周期性多孔材料组件。该框架基于新颖的多尺度和多材料设计模型,在该模型中,材料子域的结构,布局及其微观结构同时得到优化。为了严格控制其几何复杂性,宏级别的布局由级别集字段描述,而级别集字段由几何图元参数化。微观几何形状通过密度方法表示。非线性规划算法使用离散伴随方法计算出的设计灵敏度来驱动优化过程。对所提出的设计框架进行了传热问题的研究。讨论了实际的设计问题,例如散热器和具有相变的储热单元。宏观分析模型依赖于广义瞬态扩散方程。在微观尺度上,均质化用于计算等效的材料特性。数值算例表明,优化的多尺度多材料布局优于相应的单尺度结构,同时在宏观尺度上保持了几何简单性。 (C)2019 Elsevier B.V.保留所有权利。

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