增材制造中超高比强度金属结构的多维晶格设计

Qing Jin, Jae-hyun Yu, Kyungsik Ha, W. Lee, Sang-hu Park
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引用次数: 23

摘要

由于材料和能源的节省,机械零件轻量化设计的重要性正在迅速增加。随着增材制造(AM)技术的进步,传统制造工艺难以制造的晶格结构由于其高强度和轻量化等固有特性而引起了人们的极大兴趣。本文提出了一种有效的梯度点阵结构的全局-局部设计方法,即考虑机械部件的整体载荷条件,在一个区域选择一种点阵类型并优化其支撑直径,以获得比其他相应设计更高的比强度。在此工作中,利用两种基本类型的晶格(BCC和OTC)来设计基于优化支柱直径的不同局部晶格。为了评估该方法的有效性,我们设计了一个具有拓扑优化的多点状金属丝模型的三点弯曲试件,并对金属丝模型进行了基于支撑的拓扑测量优化。试验结果表明,优化后的多晶格试件的单位重量强度比其他多晶格试件高67%以上。通过这项工作,我们相信这种方法是一种有前途的方法,可以有效地设计高强度、轻量化的机械部件,用于高价值的工业应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-dimensional Lattices Design for Ultrahigh Specific Strength Metallic Structure in Additive Manufacturing
Abstract The importance of lightweight design of mechanical parts is increasing rapidly due to material and energy savings. As additive manufacturing (AM) technology advances, the lattice structures, which are extremely difficult shapes to fabricate using conventional manufacturing processes, has attracted great interest due to their intrinsic characteristics such as high strength and lightweight. We propose an effective global-local design approach of gradient lattice structures with the selection of a lattice type in a zone and optimizing its strut diameter considering the whole loading conditions of a mechanical part, in order to obtain higher specific strength than other corresponding designs. In this work, two basic types of a lattice named as BCC and OTC, was utilized to design diverse local lattices based on optimizing a strut-diameter. To evaluate the usefulness of this approach, we designed a three-point bending test specimen with topology-optimized multi-lattice wire model, and strut-based topometry optimization on the wire model. The experimental test results show that the optimized specimen had more than 67% higher strength per weight compared to other multi-lattice ones. Through this work, we believe that this method is a promising way to effectively design high strength mechanical parts with lightweight for use in high-valuable industrial applications.
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