材料科学
喷丸
残余应力
激光器
激光喷丸
表面粗糙度
复合材料
穿透深度
喷丸
休克(循环)
超短脉冲
冶金
渗透(战争)
表层
光学
图层(电子)
工程类
内科学
物理
医学
运筹学
作者
Jan Schubnell,Eva‐Regine Carl,Ardeshir Sarmast,Manuel Hinterstein,Johannes Preußner,M. Seifert,Christoph Kaufmann,P. Rußbüldt,Jan Schulte
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2023-10-19
卷期号:16 (20): 6769-6769
被引量:6
摘要
Laser shock peening (LSP) is a mechanical surface treatment process to modify near-surface material properties. Compared to conventional shot peening (SP) the process parameters can be finely adjusted with greater precision and a higher penetration depth of compressive residual stresses could be reached. However, high process times of LSP leads to high production costs. In this study, ultrafast LSP (U-LSP) with an ultrafast laser source (pulse time in the picosecond range) was applied on specimens made of X5CrNiCu15-5 and AlZnMgCu1.5. The surface characteristics (surface roughness) and surface-near properties (microstructure, residual stresses, and phase composition) were compared to the as-delivered condition, to conventional laser shock peening (C-LSP), and to SP, whereas metallographic analyses and X-ray and synchrotron radiation techniques were used. The process time was significantly lower via U-LSP compared to C-LSP. For X5CrNiCu15-5, no significant compressive residual stresses were induced via U-LSP. However, for AlZnMgCu1.5, similar compressive residual stresses were reached via C-LSP and U-LSP; however, with a lower penetration depth. A change in the phase portions in the surface layer of X5CrNiCu15-5 after C-LSP compared to SP were determined.
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