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Hierarchical topology optimization addressing material design constraints and application to sandwich-type structures

机译:分层拓扑优化解决了材料设计的局限性并应用于三明治结构

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The hierarchical topology optimization model for multiscale design of structures addresses the problem of finding optimal material distributions at different but interconnected structural length scales with the objective of optimally design the structure and its material. In this work some new developments on this model are presented. An algorithm is mounted to address specific features of multiscale design such as multiple material design constrains. Furthermore, previous design parameterizations assume micro design variables associated with each finite element, trying to approximate a pointwise optimal material definition, and leading to very efficient designs but of problematic manufacturability. Here one reduces the total number of problem design variables by assuming a design parameterization where the design is uniform within mechanically consistent larger subdomains—“design subdomains”. This eases applicability, manufacturability, and is a very effective approach for practical design problems involving for example sandwich-type structures, where larger subdomains identify structural constituents such as a soft core between two solid face-sheets. The parameterization to include “design subdomains” and the introduction of local material design constraints requires an appropriate derivation of the optimality conditions. The main structural applications presented here are related to sandwich type of structures. The influence of the designer choices for “design subdomains” characterizing the macrostructure, and “material unit cell” representing the microstructure, will also be studied in the solutions obtained. The examples show the effectiveness of the methodology presented to fully benefit from an enlarged design space incorporating structural and material designs, and thus efficiently maximize the mechanical component structural performance.
机译:用于结构多尺度设计的分层拓扑优化模型解决了在不同但相互连接的结构长度尺度上找到最佳材料分布的问题,目的是对结构及其材料进行最佳设计。在这项工作中,提出了关于该模型的一些新进展。安装了一种算法来解决多尺度设计的特定特征,例如多种材料设计约束。此外,先前的设计参数化假设与每个有限元相关联的微设计变量,试图逼近逐点最佳材料定义,并导致非常有效的设计,但可制造性存在问题。在这里,通过假设设计参数化来减少问题设计变量的总数,其中设计在机械上一致的较大子域(“设计子域”)中是一致的。这简化了适用性,可制造性,并且对于涉及例如夹心式结构的实际设计问题是一种非常有效的方法,其中较大的子区域标识了两个固体面板之间的结构成分,例如软核。包含“设计子域”的参数化和局部材料设计约束的引入要求最优条件的适当推导。这里介绍的主要结构应用与夹层结构有关。设计人员选择对表征宏观结构的“设计子域”和代表微观结构的“材料单元”的影响,也将在获得的解决方案中进行研究。示例显示了所提出的方法的有效性,该方法可充分利用结合了结构和材料设计的扩大设计空间,从而有效地最大化机械部件的结构性能。

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