Xing Xiaodong, Duan Xiaoming, Sun Xiaojing, Gong Haijun, Wang Liquan, Jiang Fengchun
College of Mechanical and Electrical Engineering, Harbin Engineering University, Harbin 150001, China.
College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin 150001, China.
Materials (Basel). 2019 Feb 1;12(3):455. doi: 10.3390/ma12030455.
Ultrasonic peening treatment (UPT) has been proved to be an effective way of improving residual stresses distribution in weld structures. Thus, it shows a great potential in stress modification for metal parts fabricated by additive manufacturing technology. In this paper, an investigation into the ultrasonic treatment process of AlSi10Mg specimens fabricated by selective laser melting (SLM) process was conducted by means of experimental and numerical simulation. The specimens were prepared using a SLM machine, and UPT on their top surface was carried out. The residual stresses were measured with an X-ray stress diffraction device before and after UPT. Meanwhile, a finite element simulation method for analyzing the influence of UPT on the residual stress field of specimens was proposed and validated by experiments. Firstly, the thermal mechanical coupling numerical simulation of the SLM process of the specimen was carried out in order to obtain the residual stress distribution in the as-fabricated specimen. Then, the transient dynamic finite element simulation model of the UPT process of the specimen was established, and the UPT effect analysis was implemented. In the UPT simulation, the residual stress was applied as a pre-stress on the specimen, and the specimen's material mechanical property was described by the Johnson⁻Cook model, whose parameters were determined by Split Hopkinson Pressure Bar (SHPB) experiment. The residual stress distribution before and after UPT predicted by the finite element model agree well with the measurement results. This paper concludes with a discussion of the effects of ultrasonic peening time, as well as the frequency and amplitude of the peening needle on residual stress.
超声冲击处理(UPT)已被证明是改善焊接结构中残余应力分布的有效方法。因此,它在增材制造技术制造的金属零件的应力修正方面显示出巨大潜力。本文通过实验和数值模拟对选择性激光熔化(SLM)工艺制备的AlSi10Mg试样的超声处理过程进行了研究。使用SLM机器制备试样,并对其顶面进行UPT。在UPT前后用X射线应力衍射装置测量残余应力。同时,提出了一种有限元模拟方法来分析UPT对试样残余应力场的影响,并通过实验进行了验证。首先,对试样的SLM过程进行热-机械耦合数值模拟,以获得加工态试样中的残余应力分布。然后,建立试样UPT过程的瞬态动态有限元模拟模型,并进行UPT效果分析。在UPT模拟中,将残余应力作为预应力施加在试样上,试样的材料力学性能用Johnson⁻Cook模型描述,其参数通过分离式霍普金森压杆(SHPB)实验确定。有限元模型预测的UPT前后残余应力分布与测量结果吻合良好。本文最后讨论了超声冲击时间以及冲击针的频率和振幅对残余应力的影响。