Modified Cellular Automaton Simulation of Metal Additive Manufacturing

J. Kubo, Yuichiro Koizumi, Takuya Ishimoto, T. Nakano
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引用次数: 4

Abstract

Metal additive manufacturing ( AM ) technologies are attracting attentions not only as a forming process but also as microstructure controlling processes. In powder bed fusion ( PBF ) AM, crystal orientations can be controlled by scanning strategies of energy beam. To optimize microstructures, computer simulations for predicting microstructures play very important roles. In this work, we have developed simulation programs to explain the mechanism of the crystal orientation control. First, we simulated the shape of melt pool by analyzing the heat transfer using apparent heat conductivity when the penetration of laser beam through keyholes was taken into consideration because of the evaporation and accompanying convections. It was assumed that the primary crystal growth direction can be determined by the temperature gradient, and the crystals grow keeping the growth direction as generally recognized. The shapes of simulated melt pools agree well with experimental observations. The modi fi ed cellular automaton simulations successfully reproduced two typical textures with di ff erent preferential orientations along the building directions of 〈 001 〉 and 〈 011 〉 when the bidirectional scanning with and without a rotation of 90° was accomplished between the layers. [ doi:10.2320 / jinstmet.J2020028 ]
金属增材制造的改进元胞自动机仿真
金属增材制造(AM)技术不仅作为一种成形工艺,而且作为一种微结构控制工艺,越来越受到人们的关注。在粉末床熔合(PBF) AM中,晶体取向可以通过能量束扫描策略来控制。为了优化微结构,计算机模拟预测微结构起着非常重要的作用。在这项工作中,我们开发了仿真程序来解释晶体取向控制的机制。首先,在考虑蒸发和对流作用的情况下,利用视热导率对熔池形状进行了模拟。假设初生晶体的生长方向可以由温度梯度决定,晶体的生长方向与一般认识一致。模拟熔池的形状与实验观测结果吻合得很好。当在层间进行90°旋转和不旋转的双向扫描时,模定元胞自动机模拟在< 001 >和< 011 >的建筑方向上成功地再现了两种具有不同优先取向的典型纹理。[doi:10.2320 / jinstmet.]J2020028]
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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