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Design optimisation for an additively manufactured automotive component

机译:设计优化瘾地制造的汽车部件

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The aim of this paper is to investigate the design optimisation and additive manufacture of automotive components. A titanium brake pedal processed through selective laser melting (SLM) is considered as a test case. Different design optimisation techniques have been employed including topology optimisation and lattice structure design. Rather than using a conventional topology optimisation method, a recently developed topology optimisation method called Iso-XFEM is used in this work. This method is capable of generating high resolution topology optimised solutions using isolines/isosurfaces of a structural performance criterion and extended finite element method (XFEM). Lattice structure design is the other technique used in this work for the design of the brake pedal. The idea is to increase the stability of the brake pedal to random loads applied to the foot pad area of the pedal. The use of lattice structures can also significantly reduce the high residual stress induced during the SLM process. The results suggest that the integration of the design optimisation techniques with a metal additive manufacturing process enables development of a promising tool for producing lightweight energy efficient automotive components.
机译:本文的目的是研究汽车组件的设计优化和添加剂制造。通过选择性激光熔化(SLM)处理的钛制动踏板被认为是测试用例。采用了不同的设计优化技术,包括拓扑优化和格子结构设计。在这项工作中使用了一个名为ISO-XFEM的最近开发的拓扑优化方法而不是使用传统的拓扑优化方法。该方法能够使用结构性能标准和扩展有限元方法(XFEM)的ISOLINES / ISOSurface来产生高分辨率拓扑优化解决方案。格子结构设计是在这项工作中用于设计制动踏板的其他技术。该思想是提高制动踏板到施加到踏板脚垫区域的随机载荷的稳定性。晶格结构的使用也可以显着降低SLM过程中引起的高残余应力。结果表明,设计优化技术与金属添加剂制造工艺的集成能够开发有望的工具,用于生产轻质节能汽车部件。

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