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Topologically optimized axle carrier for Formula Student produced by selective laser melting

机译:用于通过选择性激光熔化产生的公式学生的拓扑优化的轴载体

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Purpose This paper aims to present the design process, manufacturing and testing of a prototype of an axle carrier for Formula Student race car. The axle carrier is topologically optimized and additively manufactured using selective laser melting (SLM). Design/methodology/approach The shape of the axle carrier was created in three design stages using topology optimization and four additional design stages based on finite element calculations and experimental testing. Topology optimization was performed on the basis of relevant load cases. The sixth design stage was manufactured by SLM and then tested on a loading device together with photogrammetry measurement to obtain the real deformation. Measured deformations were compared with deformation calculated by the finite element method (FEM), verified and experiences used in the last design stage. Findings An additively manufactured axle carrier has a minimal safety factor of 1.2 according to experimental testing. The weight and maximal deformations are comparable with the milled part, although the material has about 50 per cent worse yield strength. The topologically optimized axle carrier proved big potential in the effective distribution of material and the improvement of toughness. Practical implications - This paper helps the Formula Student team to enhance the driving performance while keeping low weight. It also improves further development and upgrading of the race car. Originality/value The whole design of the topologically optimized part was investigated - from estimation of the loads to experimental verification of FEM analysis on real part.
机译:目的本文旨在介绍用于公式学生赛​​车的轴载体原型的设计过程,制造和测试。轴载体是拓扑优化的,并且使用选择性激光熔化(SLM)加剧地制造。设计/方法/方法使用拓扑优化和基于有限元计算和实验测试的四个附加设计阶段,在三个设计阶段中创建了轴载体的形状。基于相关载荷案例进行拓扑优化。第六设计阶段由SLM制造,然后在装载装置上与摄影测量测量进行测试,以获得真实变形。将测量的变形与由有限元方法(FEM)计算的变形进行比较,验证和在最后设计阶段中使用的经验。根据实验测试,调查结果含有加剧制造的轴载体的最小安全系数为1.2。重量和最大变形与研磨部件相当,尽管该材料具有约50%的屈服强度。拓扑优化的轴承架在有效分配材料分布和韧性的提高方面证明了很大的潜力。实际意义 - 本文有助于公式学生团队在保持低重量的同时增强驾驶性能。它还提高了赛车的进一步发展和升级。原创性/值的全部设计拓扑优化部件的整体设计 - 从估计载荷对实验验证的实验验证实际分析。

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