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APPLYING PATH PLANNING TO THE DESIGN OF ADDITIVELY MANUFACTURED FUNCTIONALLY GRADED MATERIALS

机译:将路径规划应用到功能性功能渐变材料的设计中

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摘要

Additive manufacturing has enabled the creation of a near infinite set of functionally gradient materials. One limitation on the manufacturability and usefulness of these materials is the presence of undesirable phases along the gradient path. For example, such phases may increase brittleness, diminish corrosion resistance, or severely compromise the printability of the part altogether. In the current work, a design methodology is proposed to plan an FGM gradient path for any number of elements that avoids undesirable phases at a range of temperatures. Gradient paths can also be optimized for a cost function. A case study is shown to demonstrate the effectiveness of the methodology in the Fe-Ni-Cr system. Paths were successfully planned from 316L SS to pure Cr that either minimize path length or maximize separation from undesirable phases. Examinations on the stochastic variability, parameter dependency, and computational efficiency of the method are also presented. Several avenues of future research are proposed that could improve the manufacturability, utility, and performance of FGMs through gradient path design.
机译:增材制造技术可以创建几乎无限的功能梯度材料集。这些材料的可制造性和实用性的一个限制是沿梯度路径存在不希望的相。例如,这样的相可能会增加脆性,降低耐腐蚀性或完全严重损害零件的可印刷性。在当前的工作中,提出了一种设计方法来为任意数量的元素规划FGM梯度路径,从而避免在一定温度范围内出现不良相。渐变路径也可以针对成本函数进行优化。案例研究显示了该方法在Fe-Ni-Cr系统中的有效性。已成功规划了从316L SS到纯Cr的路径,该路径可以最小化路径长度或最大化与不良相的分离。还介绍了该方法的随机变异性,参数依赖性和计算效率。提出了一些未来研究的途径,这些途径可以通过梯度路径设计来改善FGM的可制造性,实用性和性能。

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