Chinese Journal of Lasers, Volume. 44, Issue 4, 402005(2017)

Influence of Laser Shock Peening on Microstructure and Property of Cladding Layer of 316L Stainless Steel

Luo Kaiyu*, Zhou Yang, Lu Jinzhong, and Liu Bo
Author Affiliations
  • [in Chinese]
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    References(18)

    [2] [2] Leunda J, Soriano C, Sanz C, et al. Laser cladding of vanadium-carbide tool steels for die repair[J]. Physics Procedia, 2011, 12: 345-352.

    [3] [3] Diaz E, Amado J M, Montero J, et al. Comparative study of Co-based alloys in repairing low Cr-Mo steel components by laser cladding[J]. Physics Procedia, 2012, 39: 368-375.

    [4] [4] Cheikh H E, Courant B, Branchu S, et al. Analysis and prediction of single laser tracks geometrical characteristics in coaxial laser cladding process[J]. Optics and Lasers in Engineering, 2012, 50(3): 413-422.

    [5] [5] Ocana J L, Morales M, Garcia-Ballesteros J J, et al. Laser shock microforming of thin metal sheets[J]. Applied Surface Science, 2009, 255(10): 5633-5636.

    [8] [8] Zhang Qinglai, Wang Rong, Zhang Bingxin, et al. Effect of laser shock processing on mechanical properties and mesostructures of AZ31 magnesium alloy[J]. Chinese J Lasers, 2015, 42(3): 0303001.

    [10] [10] Lu Z M, Shi L M, Zhu S J, et al. Effect of high energy shot peening pressure on the stress corrosion cracking of the weld joint of 304 austenitic stainless steel[J]. Materials Science and Engineering A, 2015, 637: 170-174.

    [12] [12] Wang Cheng, Lai Zhilin, An Zhibin, et al. Properties improvement of laser cladded TC4 titanium alloy by laser shock processing[J]. Journal of Jiangsu University, 2013, 34(3): 331-335.

    [13] [13] Hatamleh O, Mishra R S, Oliveras O, Peening effects on mechanical properties in friction stir welded AA 2195 at elevated and cryogenic temperatures[J]. Materials & Design, 2009, 30(8): 31653173.

    [14] [14] Ren Weibin, Dong Shiyun, Xu Binshi, et al. The law of stress distribution of the laser cladding layer of Fe314 alloy[J]. China Surface Engineering, 2013, 26(3): 58-63.

    [16] [16] Li Shaozhe, Zhang Lingfeng, Xing Qingpu. Effect of laser shock processing on electrochemical corrosion behavior of AZ91 magnesium alloy[J]. Chinese J Lasers, 2013, 40(5): 0503004.

    [17] [17] Sule J, Ganguly S, Coules H, et al. Application of local mechanical tensioning and laser processing to refine microstructure and modify residual stress state of a multi-pass 304L austenitic steels welds[J]. Journal of Manufacturing Processes, 2015, 18: 141150.

    [18] [18] Yan Xiaoling, Dong Shiyun, Xu Binshi, et al. Analysis of microstructure distribution and defect generation mechanism of the laser cladding layer with Fe901 alloy powder[J]. Technology and Test, 2013(12): 115-118.

    CLP Journals

    [1] Zhao Xujie, Ma Yongxin, Zhang Zenghuan, Zhang Xuanjun, Liu Zhaopeng, Yang Wenjie. Research and Application Status of Laser Shock Peening Technology[J]. APPLIED LASER, 2022, 42(10): 111

    [2] Ge Maozhong, Xiang Jianyun, Tang Yang. Effect of Laser Shock Processing on Fatigue Crack Growth Rate of TC4 Repaired Parts[J]. Laser & Optoelectronics Progress, 2018, 55(7): 71405

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    Luo Kaiyu, Zhou Yang, Lu Jinzhong, Liu Bo. Influence of Laser Shock Peening on Microstructure and Property of Cladding Layer of 316L Stainless Steel[J]. Chinese Journal of Lasers, 2017, 44(4): 402005

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    Paper Information

    Category: laser manufacturing

    Received: Sep. 12, 2016

    Accepted: --

    Published Online: Apr. 10, 2017

    The Author Email: Kaiyu Luo (kyluo@ujs.edu.cn)

    DOI:10.3788/cjl201744.0402005

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