Reducing residual stresses and deformations in selective laser melting through multi-level multi-scale optimization of cellular scanning strategy

SPIE LASE Pub Date : 2016-04-06 DOI:10.1117/12.2212490
S. Mohanty, J. Hattel
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引用次数: 8

Abstract

Residual stresses and deformations continue to remain one of the primary challenges towards expanding the scope of selective laser melting as an industrial scale manufacturing process. While process monitoring and feedback-based process control of the process has shown significant potential, there is still dearth of techniques to tackle the issue. Numerical modelling of selective laser melting process has thus been an active area of research in the last few years. However, large computational resource requirements have slowed the usage of these models for optimizing the process. In this paper, a calibrated, fast, multiscale thermal model coupled with a 3D finite element mechanical model is used to simulate residual stress formation and deformations during selective laser melting. The resulting reduction in thermal model computation time allows evolutionary algorithm-based optimization of the process. A multilevel optimization strategy is adopted using a customized genetic algorithm developed for optimizing cellular scanning strategy for selective laser melting, with an objective of reducing residual stresses and deformations. The resulting thermo-mechanically optimized cellular scanning strategies are compared with standard scanning strategies and have been used to manufacture standard samples.
通过多层次多尺度优化元胞扫描策略降低选择性激光熔化过程中的残余应力和变形
残余应力和变形仍然是扩大选择性激光熔化作为工业规模制造工艺范围的主要挑战之一。虽然过程监控和基于反馈的过程控制已经显示出巨大的潜力,但仍然缺乏解决这一问题的技术。因此,选择性激光熔化过程的数值模拟是近年来研究的一个活跃领域。然而,大量的计算资源需求已经减缓了这些模型用于优化流程的使用。本文采用一种校准的、快速的、多尺度热模型与三维有限元力学模型相结合的方法来模拟选择性激光熔化过程中的残余应力形成和变形。由此减少的热模型计算时间允许基于进化算法的过程优化。采用自定义遗传算法对选择性激光熔化的元胞扫描策略进行优化,以减小残余应力和变形为目标。所得到的热机械优化的细胞扫描策略与标准扫描策略进行了比较,并已用于制造标准样品。
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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