Numerical simulation study of combined shot peening and laser shock peening on surface integrity of Ti-6Al-4V titanium alloy

喷丸 喷丸 材料科学 表面粗糙度 激光喷丸 休克(循环) 钛合金 冶金 合金 表面完整性 激光器 表面光洁度 复合材料 残余应力 光学 医学 物理 内科学
作者
Quanwen Wang,Yue Ma,Xuesong Fu,Mengjin Liu,Ziwen Cao,Pengtao Gai,Wenlong Zhou
出处
期刊:Surface & Coatings Technology [Elsevier BV]
卷期号:487: 130997-130997 被引量:7
标识
DOI:10.1016/j.surfcoat.2024.130997
摘要

Combined shot peening and laser shock peening (CSP) can introduce high surface compressive residual stress (CRS) and deep CRS layer, and reduce the high surface roughness caused by shot peening. The relationship between CSP sequences and surface integrity, including CRS and surface roughness, is far from satisfying the actual demand. In this paper, we construct a finite element model considering initial surface profile features. The experimental results agree with the simulated results. Based on the simulation results, axial and longitudinal stress wave transfer effects on surface CRS and depth CRS are investigated. Compared with shot peening (SP) and laser shock peening (LSP) alone, CSP treatment can increase CRS depth and CRS magnitude by 1060 μm and 50 ∼ 80Mpa, respectively. In addition, the roughness following CSP treatment is lower than that observed after SP treatment alone, and the roughness varies depending on the sequence of CSP treatment. Specifically, the roughness values for SP, SP + LSP, and LSP + SP are 0.938 ± 0.031 μm, 0.982 ± 0.11 μm, and 1.168 ± 0.093 μm, respectively. The surface morphology, hardness, and simulation results are combined to reveal the reasons for the reduction of surface roughness after CSP treatment. The changes of peaks and valleys after CSP treatment compared with single SP treatment were studied, and the variation trend of surface roughness was further explained.

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