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Topological design of sandwich structures with graded cellular cores by multiscale optimization

机译:基于多尺度优化的梯度蜂窝芯三明治结构拓扑设计

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Exploring ultralight sandwich structures with superior load-bearing performance is one of the important topics in structural optimization. This paper proposes a novel multiscale topology optimization method to achieve the design of high-performance sandwich structures with graded cellular cores (SSGCCs). In this method, the thicknesses of two solid face-sheets, the graded distribution of cellular sandwich cores at a single layer and their configurations are optimized to well suit for loading conditions, where the single layer is arrayed periodically at its height direction to obtain sandwich layers. Specifically, at macroscale, the variable thickness sheet (VTS) method with the capacity of generating an overall free material distribution pattern, is applied to optimize the thicknesses of two solid face-sheets and achieve the graded distribution of cellular sandwich cores at a single layer. At microscale, a progressive optimization scheme is employed to topologically optimize multiple representative cellular cores (RCCs) at a single layer, so as to achieve their similar topological configurations. With a shape interpolation method, the configurations of graded cellular cores (GCCs) with essential interconnections can be obtained by interpolating the shapes of these RCCs with similar topological features. In order to reduce the computational burden on evaluating effective properties of GCCs by the homogenization method, a Kriging metamodel is constructed based on some key cellular cores as sample points, and adopted to predict the effective properties of all the GCCs. Both 2D and 3D numerical examples are provided to test the validity and advantages of the proposed method for designing SSGCCs. (C) 2019 Elsevier B.V. All rights reserved.
机译:探索具有超强承载性能的超轻夹层结构是结构优化的重要主题之一。本文提出了一种新颖的多尺度拓扑优化方法,以实现具有梯度蜂窝芯(SSGCC)的高性能三明治结构的设计。在这种方法中,对两个固体面板的厚度,单层多孔三明治芯的梯度分布及其配置进行了优化,以很好地适应加载条件,其中单层在其高度方向上定期排列以获得三明治层。具体而言,在宏观上,具有产生整体自由材料分布图案能力的可变厚度片(VTS)方法被用于优化两个固体面板的厚度,并在单层上实现蜂窝状夹芯的梯度分布。在微观规模上,采用渐进式优化方案对单个层上的多个代表性细胞核(RCC)进行拓扑优化,以实现其相似的拓扑配置。使用形状插值方法,可以通过对具有相似拓扑特征的这些RCC的形状进行插值来获得具有基本互连的渐变蜂窝核心(GCC)的配置。为了减轻均质化方法评价GCC有效性能的计算负担,以一些关键的细胞核为样本点,构造了Kriging元模型,用于预测所有GCC有效性能。提供了2D和3D数值示例,以测试所设计的SSGCC设计方法的有效性和优势。 (C)2019 Elsevier B.V.保留所有权利。

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