3D Additive Lattice Topology Optimization: A Unit Cell Design Approach

Bradley Hanks, M. Frecker
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引用次数: 2

Abstract

Non-stochastic lattice structures are patterned after the unit cell topology and are of interest to the research and design communities for improving stiffness to weight ratios and/or metamaterial design. While additive manufacturing (AM) increases design freedom, it remains difficult to design or select an appropriate unit cell topology. In this work, a ground structure topology optimization approach is developed for unit cell design. Using a multi-objective evolutionary algorithm, this framework incorporates a library of different objectives, constraints, and penalties. The Additive Lattice Topology Optimization (ALTO) approach generates novel lattice structures for AM from the selected design objectives. A key purpose of this framework is incorporating AM process considerations into the optimization through objectives, constraints, and penalty functions for improved manufacturability. Two case studies presented in this work demonstrate ALTO’s ability to generate novel lattice structures with specific functionality while accounting for AM process constraints for laser powder bed fusion. Case Study 1 is an example of generating a lattice structure for heat sink applications. Case Study 2 demonstrates creation of three novel lattices with different stiffness properties, each with the same volume fraction. Using ground structure topology optimization and incorporating AM process considerations, ALTO is a unique approach for improved lattice structure design.
三维加性晶格拓扑优化:一种单元格设计方法
非随机晶格结构是在单元胞拓扑结构之后绘制的,是研究和设计界对提高刚度重量比和/或超材料设计感兴趣的结构。虽然增材制造(AM)增加了设计自由度,但仍然难以设计或选择适当的单元胞拓扑结构。在这项工作中,开发了一种用于单元格设计的地面结构拓扑优化方法。使用多目标进化算法,该框架结合了不同目标、约束和惩罚的库。加性晶格拓扑优化(ALTO)方法从选定的设计目标为增材制造生成新的晶格结构。该框架的一个关键目的是通过目标、约束和惩罚函数将增材制造过程考虑纳入优化中,以提高可制造性。本研究中提出的两个案例研究表明,ALTO能够生成具有特定功能的新型晶格结构,同时考虑到激光粉末床融合的增材制造工艺限制。案例研究1是一个为散热器应用生成晶格结构的例子。案例研究2演示了三个具有不同刚度特性的新型晶格的创建,每个晶格具有相同的体积分数。利用地面结构拓扑优化和AM工艺考虑,ALTO是改进晶格结构设计的独特方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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