English

Two-Scale Topology Optimization with Microstructures

Computational Engineering, Finance, and Science 2017-06-13 v1

Abstract

In this paper 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 in order 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, i.e several orders of magnitude higher than what can be achieved with current systems.

Keywords

Cite

@article{arxiv.1706.03189,
  title  = {Two-Scale Topology Optimization with Microstructures},
  author = {Bo Zhu and Mélina Skouras and Desai Chen and Wojciech Matusik},
  journal= {arXiv preprint arXiv:1706.03189},
  year   = {2017}
}

Comments

19 pages, 25 figures, to appear in ACM Transactions on Graphics 2017