材料科学
微观结构
残余应力
喷丸
合金
冶金
激光喷丸
极限抗拉强度
喷丸
粒度
变形(气象学)
复合材料
休克(循环)
硬化(计算)
材料的强化机理
内科学
医学
图层(电子)
作者
Hong Zhang,Yunqing Jiang,Meng Liu,Tongfei Zou,Quanyi Wang,Hao Wu,Yubing Pei,Yongjie Liu,Qingyuan Wang
标识
DOI:10.1016/j.jmrt.2024.04.107
摘要
This study investigates the effects of laser shock peening (LSP) on the microstructural evolution and surface hardening of MAR-M247 nickel-based alloy. Experimental and numerical simulation methods are employed to analyze the influence of pulse power density and spot size. The results demonstrate that LSP significantly enhances surface hardness and yield strength. As the pulse power density increases, the magnitude and depth of plastic deformation increase. Higher power densities can implant deeper and greater compressive residual stress (CRS), but the corresponding tensile residual stress (TRS) also increases. Reducing both power density and spot size decreases the amount of plastic deformation of the surface. However, decreasing the spot size results in a decrease in the depth of the CRS. On the other side, based on the analysis of the microstructure, during the process of LSP, many dislocations accumulate in the γ matrix and evolve into subgrain boundaries, resulting in grain refinement. Additionally, LSP induces the precipitation of nanoscale carbides. This study tries to establish the influence law and action mechanism between LSP process-material property-microscopic evolution, which provides theoretical and applied data support for engineering applications.
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