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An explicit optimization model for integrated layout design of planar multi-component systems using moving morphable bars

机译:使用可变形棒的平面多组件系统集成布局设计的显式优化模型

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Layout design of multi-component systems has received ever-increasing attention over recent years. However, most of the current literature on the layout design of multi-component systems conducted are all carried out in an implicit way. In this paper, an explicit optimization model based on the moving morphable bars method is proposed. To this aim, topology description functions are used to describe the geometrical shapes of embedded components, while moving bars act as supporting structure that connects these embedded components. Different from traditional optimization methods, the geometric parameters used to describe the size, shape, location and orientation of the moving bars and embedded components are considered as design variables in this work. To avoid remeshing the grids and improve the efficiency of computation, the moving bars and embedding components are mapped into two density fields on a fixed grid using a smoothed Heaviside function. A discrete material interpolation scheme developed for orientation optimization problem is extended for the first time to the material parameterization of multi-component systems. Moreover, a single explicit constraint based on the volume and perimeter of embedded components is proposed for avoiding overlaps between the embedded components, and between each component and the design domain boundary. Several numerical examples are performed to show the effectiveness and flexibility of the presented optimization model in handling layout optimization of structures with multi-phase embedded components. (C) 2018 Elsevier B.V. All rights reserved.
机译:近年来,多组件系统的布局设计越来越受到关注。但是,当前有关进行多组件系统布局设计的大多数文献都是以隐式方式进行的。本文提出了一种基于运动可变形钢筋方法的显式优化模型。为此,拓扑描述功能用于描述嵌入式组件的几何形状,而移动杆则充当连接这些嵌入式组件的支撑结构。与传统的优化方法不同,用于描述活动杆和嵌入式组件的尺寸,形状,位置和方向的几何参数在此工作中被视为设计变量。为避免重新网格化并提高计算效率,可使用平滑的Heaviside函数将移动条和嵌入分量映射到固定网格上的两个密度字段中。针对方向优化问题开发的离散材料插值方案首次扩展到多组件系统的材料参数化。此外,提出了一个基于嵌入式组件的体积和周长的显式约束,以避免嵌入式组件之间以及每个组件与设计域边界之间的重叠。进行了几个数值算例,以表明所提出的优化模型在处理具有多相嵌入式组件的结构的布局优化中的有效性和灵活性。 (C)2018 Elsevier B.V.保留所有权利。

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