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Bi-material microstructural design of chiral auxetic metamaterials using topology optimization

机译:基于拓扑优化的手性膨胀超材料双材料微观结构设计

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This paper presents a new bi-material microstructural design method for chiral auxetic metamaterials. Based on the independent point-wise density interpolation (iPDI) and a bi-material model, optimal design problem of periodic unit cells is formulated using nodal density variables. The design objective is to minimize the Poisson's ratio while satisfying the specified volume constraints of the hard and soft materials, and the effective elastic properties of the bi-material microstructure are computed by the asymptotic homogenization method under periodic boundary conditions. This topology optimization problem is solved with a gradient-based mathematical programming algorithm on the basis of the sensitivity analysis. Several numerical examples, regarding design of anisotropic, orthogonal anisotropic and isotropic bi-material microstructures of chiral auxetic metamaterials, are given to demonstrate the effectiveness of the method. It is shown that the proposed bi-material design optimization method can be used to improve the performance of chiral auxetic metamaterials through enlarging the design space.
机译:本文提出了一种用于手性膨胀超材料的新型双材料微观结构设计方法。基于独立的逐点密度插值(iPDI)和双材料模型,使用节点密度变量制定了周期晶胞的最佳设计问题。设计目标是在满足硬和软材料的指定体积约束的同时最小化泊松比,并通过渐进均质化方法在周期边界条件下计算双材料微结构的有效弹性。在灵敏度分析的基础上,使用基于梯度的数学编程算法解决了该拓扑优化问题。给出了几个关于手性膨胀超材料的各向异性,正交各向异性和各向同性双材料微观结构设计的数值例子,以证明该方法的有效性。结果表明,所提出的双材料设计优化方法可以通过扩大设计空间,来提高手性拉长超材料的性能。

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