Influence of hydrogen on surface integrity and phase transformation of laser peened 316L stainless steel

Q3 Engineering
Jianzhong Zhou, Zheng Yang, Shu Huang, J. Sheng, W. Tan
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引用次数: 0

Abstract

To investigate the influence of hydrogen atoms on the surface integrity and the phase transformation of type 316L stainless steel after laser peening, specimens of laser peened 316L austenitic stainless steel were cathodic hydrogen charged. The surface residual stress of samples subjected to laser peening, the metallurgical structures and the microhardness were studied. The result shows that compressive residual stress is induced by laser peening. The compressive residual stress is 35.55 MPa, 46 MPa and 72 MPa, respectively, when the laser energy is 2 J, 5 J and 8 J. Meanwhile, laser peening refines the grain size, and the surface microhardness reveals that laser peening suppress the increase of microhardness caused by hydrogen atoms. Compared with unimpacted specimens, the amount of hydrogen attacked holes on impacted samples is decreased. The X-ray diffraction reveals that hydrogen charging is responsible for the martensite formed on the surface and the laser peening suppress the formation of martensite.
氢对316L不锈钢激光喷丸表面完整性和相变的影响
为了研究氢原子对316L不锈钢激光喷丸后表面完整性和相变的影响,对激光喷丸后的316L奥氏体不锈钢试样进行了阴极充氢处理。研究了激光喷丸试样的表面残余应力、金相组织和显微硬度。结果表明,激光喷丸产生了压缩残余应力。当激光能量为2J、5J和8J时,压缩残余应力分别为35.55MPa、46MPa和72MPa。同时,激光喷丸细化了晶粒尺寸,表面显微硬度表明激光喷丸抑制了氢原子引起的显微硬度的增加。与未受冲击的试样相比,受冲击试样上的氢蚀孔数量减少。X射线衍射表明,充氢是表面形成马氏体的原因,激光喷丸抑制了马氏体的形成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
International Journal of Nanomanufacturing
International Journal of Nanomanufacturing Engineering-Industrial and Manufacturing Engineering
CiteScore
0.60
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0.00%
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