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LATTICE STRUCTURE DESIGN FOR ADDITIVE MANUFACTURING: UNIT CELL TOPOLOGY OPTIMIZATION

机译:增材制造的晶格结构设计:单元细胞拓扑优化

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摘要

Additive manufacturing is a developing technology that enhances design freedom at multiple length scales, from the macroscale, or bulk geometry, to the mesoscale, such as lattice structures, and even down to tailored microstructure. At the mesoscale, lattice structures are often used to replace solid sections of material and are typically patterned after generic topologies. The mechanical properties and performance of generic unit cell topologies are being explored by many researchers but there is a lack of development of custom lattice structures, optimized for their application, with considerations for design for additive manufacturing. This work proposes a ground structure topology optimization method for systematic unit cell optimization. Two case studies are presented to demonstrate the approach. Case Study 1 results in a range of unit cell designs that transition from maximum thermal conductivity to minimization of compliance. Case Study 2 shows the opportunity for constitutive matching of the bulk lattice properties to a target constitutive matrix. Future work will include validation of unit cell modeling, testing of optimized solutions, and further development of the approach through expansion to 3D and refinement of objective, penalty, and constraint functions.
机译:增材制造是一项不断发展的技术,可以提高从宏观尺度或整体几何体到中尺度(如晶格结构)乃至定制微结构在内的多个长度尺度的设计自由度。在中尺度上,晶格结构通常用于替换材料的实心部分,并且通常根据通用拓扑进行构图。许多研究人员正在探索通用晶胞拓扑的机械性能和性能,但缺乏针对定制应用优化的定制晶格结构的开发,并考虑了增材制造的设计。这项工作提出了一种用于系统单位晶胞优化的地面结构拓扑优化方法。提出了两个案例研究来说明该方法。案例研究1导致了一系列单位电池设计,这些设计从最大导热率过渡到最小顺从性。案例研究2显示了将体晶格属性与目标本构矩阵进行本构匹配的机会。未来的工作将包括验证晶胞模型,测试优化的解决方案,以及通过扩展到3D以及完善目标,惩罚和约束功能来进一步开发该方法。

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