Multiscale, thermomechanical topology optimization of self-supporting cellular structures for porous injection molds

被引:8
|
作者
Wu, Tong [1 ]
Tovar, Andres [1 ]
机构
[1] Indiana Univ Purdue Univ Indianapolis, Dept Mech & Energy Engn, Indianapolis, IN 46202 USA
关键词
Additive manufacturing; Injection mold design; Lattice structure; Multiscale topology optimization; DESIGN;
D O I
10.1108/RPJ-09-2017-0190
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Purpose This paper aims to establish a multiscale topology optimization method for the optimal design of non-periodic, self-supporting cellular structures subjected to thermo-mechanical loads. The result is a hierarchically complex design that is thermally efficient, mechanically stable and suitable for additive manufacturing (AM). Design/methodology/approach The proposed method seeks to maximize thermo-mechanical performance at the macroscale in a conceptual design while obtaining maximum shear modulus for each unit cell at the mesoscale. Then, the macroscale performance is re-estimated, and the mesoscale design is updated until the macroscale performance is satisfied. Findings A two-dimensional Messerschmitt Bolkow Bolhm (MBB) beam withstanding thermo-mechanical load is presented to illustrate the proposed design method. Furthermore, the method is implemented to optimize a three-dimensional injection mold, which is successfully prototyped using 420 stainless steel infiltrated with bronze. Originality/value By developing a computationally efficient and manufacturing friendly inverse homogenization approach, the novel multiscale design could generate porous molds which can save up to 30 per cent material compared to their solid counterpart without decreasing thermo-mechanical performance. Practical implications - This study is a useful tool for the designer in molding industries to reduce the cost of the injection mold and take full advantage of AM.
引用
收藏
页码:1482 / 1492
页数:11
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