金属丝和电弧增材制造夹紧三维有限元分析

Xiaolong Wang, Aimin Wang
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引用次数: 3

摘要

在线材和电弧增材制造中,夹紧是减少变形和缺陷的必要措施。在仿真中考虑夹紧模型可以提高变形和残余应力的预测精度。本文建立了角夹的三维有限元模型,并用实验结果验证了焊头轮廓和热源模型。使用simulfact。对焊接有限元分析软件、总变形、有效残余应力分布以及应力分量进行了研究。从始至终,最大有效应力分布在靠近夹紧的区域。中间点沿横向方向的有效应力为侧向最小应力,而在纵向方向的中间点由于冷却时间的变形减小而出现应力峰值。夹紧形式与总变形和残余应力分布有显著关系。根据应力分量分析,横向应力远高于纵向应力,在残余应力中占主导地位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Three-Dimensional Finite Element Analysis with Clamping in Wire and Arc Additive Manufacturing
Clamping is necessary to reduce distortion and defect in wire and arc additive manufacturing. Considering the clamping model in simulation can improve the prediction accuracy of the distortion and residual stress. In this paper, a three-dimensional finite element model with corner clamping is established, and the weld-bead profile and heat source model is verified with experimental result. Using the Simufact.welding finite element analysis software, total distortion, effective residual stress distribution as well as the stress components are investigated. It has been observed that the maximum effective stress distributes in the region near clamping from beginning to end. The effective stress of the middle point along the transversal side is the side minimum stress, while there is a stress peak in the longitudinal side middle point owing to the distortion reduction during cooling time. The clamping form has a significant relationship with total distortion and residual stress distribution. According to the stress components analysis, the transversal stress is much higher than longitudinal stress, and plays a dominant role in the residual stress.
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