基于热历史反馈的细胞柔性机构增材制造设计

Jivtesh B. Khurana, Bradley Hanks, M. Frecker
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引用次数: 8

摘要

随着人们对金属增材制造的兴趣日益浓厚,增材制造设计的一个领域是了解零件几何形状与制造工艺如何影响零件性能的能力。此外,许多研究人员正在追求增材制造的设计,目标是为刚性和轻量级应用生成设计,而不是量身定制的合规性。与传统机构相比,柔性机构具有独特的优势,但在此之前,复杂的3D柔性机构一直受到可制造性的限制。增材制造的最新进展使制造更复杂的3D金属柔性机构成为可能,这是一个相对未开发的研究领域。本文提出了一种增材制造工作流的设计方法,该方法将结构性能和可制造性反馈给设计人员。具体来说,一个细胞接触辅助柔顺机构的能量吸收被用作一个测试问题。从吸收能量的有限元模拟以及AM构建模拟的热历史中获得的见解用于进一步完善设计。利用提出的工作流程,确定了测试问题的性能和可制造性的几个趋势,并用于重新设计兼容单元。与初步设计的单体电池相比,重新设计的单体电池的能量吸收能力仅下降了7.8%,而热变形减少了20%。所提出的工作流程提供了一种系统的方法来告知设计人员重新设计AM部件的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design for Additive Manufacturing of Cellular Compliant Mechanism Using Thermal History Feedback
With growing interest in metal additive manufacturing, one area of interest for design for additive manufacturing is the ability to understand how part geometry combined with the manufacturing process will affect part performance. In addition, many researchers are pursuing design for additive manufacturing with the goal of generating designs for stiff and lightweight applications as opposed to tailored compliance. A compliant mechanism has unique advantages over traditional mechanisms but previously, complex 3D compliant mechanisms have been limited by manufacturability. Recent advances in additive manufacturing enable fabrication of more complex and 3D metal compliant mechanisms, an area of research that is relatively unexplored. In this paper, a design for additive manufacturing workflow is proposed that incorporates feedback to a designer on both the structural performance and manufacturability. Specifically, a cellular contact-aided compliant mechanism for energy absorption is used as a test problem. Insights gained from finite element simulations of the energy absorbed as well as the thermal history from an AM build simulation are used to further refine the design. Using the proposed workflow, several trends on the performance and manufacturability of the test problem are determined and used to redesign the compliant unit cell. When compared to a preliminary unit cell design, a redesigned unit cell showed decreased energy absorption capacity of only 7.8% while decreasing thermal distortion by 20%. The workflow presented provides a systematic approach to inform a designer about methods to redesign an AM part.
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