Two-scale topology optimization with microstructures

Bo Zhu, M. Skouras, Desai Chen, W. Matusik
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引用次数: 122

Abstract

In this article, we present a novel two-scale framework to optimize the structure and the material distribution of an object given its functional specifications. Our approach utilizes multi-material microstructures as low-level building blocks of the object. We start by precomputing the material property gamut—the set of bulk material properties that can be achieved with all material microstructures of a given size. We represent the boundary of this material property gamut using a level set field. Next, we propose an efficient and general topology optimization algorithm that simultaneously computes an optimal object topology and spatially varying material properties constrained by the precomputed gamut. Finally, we map the optimal spatially varying material properties onto the microstructures with the corresponding properties to generate a high-resolution printable structure. We demonstrate the efficacy of our framework by designing, optimizing, and fabricating objects in different material property spaces on the level of a trillion voxels, that is, several orders of magnitude higher than what can be achieved with current systems.
微结构双尺度拓扑优化
在本文中,我们提出了一种新的双尺度框架来优化给定其功能规格的对象的结构和材料分布。我们的方法利用多材料微结构作为对象的低级构建块。我们从预先计算材料属性域开始,这是一组可以用给定尺寸的所有材料微结构实现的大块材料属性。我们用一个水平集域来表示这个材料属性域的边界。接下来,我们提出了一种高效且通用的拓扑优化算法,该算法同时计算最优对象拓扑和受预计算色域约束的空间变化材料属性。最后,我们将最佳的空间变化材料属性映射到具有相应属性的微结构上,以生成高分辨率的可打印结构。我们通过在一万亿体素的水平上设计、优化和制造不同材料属性空间中的对象来证明我们的框架的有效性,也就是说,比当前系统所能实现的要高几个数量级。
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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