Material Optimization Method in 3D Printing

Md. Hazrat Ali, GazizYerbolat, ShynggysAmangeldi
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引用次数: 7

Abstract

The composite materials with the specified mechanical property open new opportunities for the material optimization. Notably, in 3D printing, several materials can be applied in a single manufacturing process. The critical review of various materials shows a new path to use these materialsboth in Selective Laser Sintering (SLS) printing and in the filament for Fused Deposition Modeling (FDM) printing. The idea of optimization is crucial by relying on the mechanical property of materials and automate it in 3D printing. It is performed by considering the input parameters and the application of the products. The current problem of multi-material optimization is the lack of thorough material property analysis and implementation to develop a proper database. Thus, Finite Element Analysis (FEA) on the selected materials with different specimens and with reasoning results is discussed to investigate materials property. The obtained results can be applied to the material optimization process by selecting proper material according to the boundary conditions. The algorithms of topology optimization indicate the proper application of the obtained results. In this paper, 3D printing through the physical algorithm with the methods of active and inactive points of investigation on geometry is presented. Thus, the inactive points can be excluded, and the material usage could be reduced.
3D打印中的材料优化方法
具有特定力学性能的复合材料为材料优化开辟了新的机遇。值得注意的是,在3D打印中,可以在单个制造过程中应用几种材料。通过对各种材料的综述,揭示了这些材料在选择性激光烧结(SLS)打印和熔融沉积成型(FDM)打印中应用的新途径。优化的想法是至关重要的,因为它依赖于材料的机械性能,并在3D打印中实现自动化。它是通过考虑输入参数和产品的应用来实现的。目前多材料优化的问题是缺乏深入的材料性能分析和实现,无法开发合适的数据库。为此,对所选材料采用不同的试样进行有限元分析,并结合推理结果对材料的性能进行研究。所得结果可用于根据边界条件选择合适的材料进行材料优化。拓扑优化算法表明了所得结果的合理应用。提出了一种基于几何活动点和非活动点的物理算法的3D打印方法。因此,可以排除不活跃点,并可以减少材料的使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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