Modeling thermal and mechanical cancellation of residual stress from hybrid additive manufacturing by laser peening

IF 2.7
Guru Madireddy , Chao Li , Jingfu Liu , Michael P. Sealy
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引用次数: 20

Abstract

Additive manufacturing (AM) of metals often results in parts with unfavorable mechanical properties. Laser peening (LP) is a high strain rate mechanical surface treatment that hammers a workpiece and induces favorable mechanical properties. Peening strain hardens a surface and imparts compressive residual stresses improving the mechanical properties of a material. This work investigates the role of LP on layer-by-layer processing of 3D printed metals using finite element analysis. The objective is to understand temporal and spatial residual stress development after thermal and mechanical cancellation caused by cyclically coupling printing and peening. Results indicate layer peening frequency is a critical process parameter affecting residual stress redistribution and highly interdependent on the heat generated by the printing process. Optimum hybrid process conditions were found to exists that favorably enhance mechanical properties. With this study, hybrid-AM has ushered in the next evolutionary step in AM and has the potential to profoundly change the way high value metal goods are manufactured.

激光强化混合增材制造残余应力的热力学消除建模
金属增材制造(AM)经常导致零件具有不利的力学性能。激光强化(LP)是一种高应变率的机械表面处理方法,它可以对工件进行锤击并产生良好的力学性能。强化应变使表面变硬,并施加残余压应力,提高材料的机械性能。这项工作研究了LP在使用有限元分析的3D打印金属逐层加工中的作用。目的是了解由循环耦合印刷和喷丸引起的热和机械消除后的时间和空间残余应力发展。结果表明,喷丸频率是影响残余应力分布的关键工艺参数,且与打印过程中产生的热量高度相关。发现存在有利于提高材料力学性能的最佳混合工艺条件。通过这项研究,混合增材制造迎来了增材制造的下一个进化阶段,并有可能深刻改变高价值金属产品的制造方式。
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