• Acta Optica Sinica
  • Vol. 31, Issue 7, 714002 (2011)
Luo Xinmin1、*, Zhang Jingwen1, Ma Hui1, Zhang Yongkang2, Chen Kangmin1、3, Ren Xudong2, and Luo Kaiyu2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: 10.3788/aos201131.0714002 Cite this Article Set citation alerts
    Luo Xinmin, Zhang Jingwen, Ma Hui, Zhang Yongkang, Chen Kangmin, Ren Xudong, Luo Kaiyu. Dislocation Configurations Induced by Laser Shock Processing of 2A02 Aluminum Alloy[J]. Acta Optica Sinica, 2011, 31(7): 714002 Copy Citation Text show less
    References

    [1] P. Li, S. X. Li, Z. G. Wang et al.. Fundamental factors on formation mechanism of dislocation arrangements in cyclically deformed fcc single crystals[J]. Prog. Mater. Sci., 2011, 56(3): 328~377

    [2] Zuo Tiechuan, Chen Hong. Green manufacture in 21 centurylaser manufacturing technology and application[J]. J. Mechanical Engineering, 2009, 45(10): 106~110

    [3] Luo Xinmin, Yuan Chunzhi, Ren Xudong et al.. Laser shock deforming and induced microstructure evolution of austenitic stainless steel sheet[J]. Int. J. Mater. Struct. Integrity, 2010, 4(1): 87~98

    [4] Guo Naiguo, Luo Xinmin, Hua Yingqun. The effects of laser shock processing on microstructure and properties of metal[J]. Materials Review, 2006, 20(6): 11~13

    [5] Liu Yunyan, Cheng Chuanfu, Song Hongsheng et al.. Morphology analysis of ZnOGa thin films deposited by pulsed laser deposition[J]. Acta Optica Sinica, 2011, 31(1): 0131003

    [6] Zhong Minlin, Liu Wenjin. Leading areas and hot topics on global laser materials processing research[J]. Chinese J. Lasers, 2008, 35(11): 1653~1659

    [7] Ma Guangyi, Wu Dongjiang, Niu Fangyong et al.. Influence of dislocation on the laser bending process of thin silicon[J]. Chinese J. Lasers, 2008, 35(5): 772~775

    [8] G. Rosas, G. R. Gonzalez, J. L. Ocaa et al.. Laser shock processing of 6061-T6 Al alloy with 1064 nm and 532 nm wavelengths[J]. Appl. Surf. Sci., 2010, 256(20): 5828~5831

    [9] Zhang Xingquan, He Guangde, Qi Xiaoli et al.. Investigation on contact fatigue strength of gear affected by laser shock processing[J]. Chinese J. Lasers, 2010, 37(12): 3187~3191

    [10] Zhang Jie, Gu Xiang, Zhu Le et al.. Numerical simulation of fatigue life of 7050 aluminum alloy processed by laser shock processing[J]. Chinese J. Lasers, 2010, 37(12): 3192~3195

    [11] Lu Jinzhong, Luo Kaiyu, Feng Aixin et al.. Micro-structural enhancement mechanism of LY2 aluminum alloy by means of a single laser shock processing[J]. Chinese J. Lasers, 2010, 37(10): 2662~2666

    [12] G. J. Cheng, M. A. Shehadeh. Multiscale dislocation dynamics analyses of laser shock peening in silicon single crystals[J]. Int. J. Plasticity, 2006, 22(12): 2171~2194

    [13] Wang Youneng, Vukelic Sinisa, Kysar Jeffrey et al.. Spatially resolved characterization of geometrically necessary dislocation dependent deformation in micro-scale laser shock peening[C]. Proceedings of the ASME International Manufacturing Science and Engineering Conference, MSEC2008, 2009, 1: 293~302

    [14] M. A. Meyers, M. S. Schneider, H. Jarmakani et al.. Deformation substructures and their transitions in laser shock-compressed copper-aluminum alloys[J]. Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science, 2008, 39(2): 304~321

    [15] Wang Shengbo, Fan Yong , Wu Hongxing et al.. Research of strengthening 7050 aerial aluminum alloy structural material with laser shock processing[J]. Chinese J. Lasers, 2004, 31(1): 125~128

    [16] Zhou Lei, Li Yinghong, Wang Cheng et al.. Laser shock peening for LY2 alloy[J]. High Power Laser and Particle Beams, 2010, 22(8): 1780~1784

    [17] J. Z. Lu, K.Y. Luo, Y. K. Zhang et al.. Grain refinement of LY2 aluminum alloy induced by ultra-high plastic strain during multiple laser shock processing impacts[J]. Acta Materialia, 2010, 58(11): 3984~3994

    [18] Zhang Xingquan, Zhang Yongkang, Zhou Jianzhong, et al.. Characteristics of deformation of plate by laser peening under the elastic pre-loading condition[J]. Chinese J. Lasers, 2008, 35(7): 1095~1100

    [19] Zhou Yijun, Zhang Yongkang, Zhou Jianzhong et al.. Study on properties of overlay in laser shock forming[J]. Laser Technology, 2005, 29(6): 626~628

    [20] Luo Xinmin, Zhang Jingwen, Zhao Guangzhi et al.. Effect of laser shock strengthening on fatigue behaviors of 2A02 aluminum alloy[J]. Chinese J. Lasers, 2009, 36(12): 3323~3328

    [21] Wu Yichu, Zhang Xiaohong. Applications of positron annihilation technology for metals and alloys[J]. Physics, 2000,29(7): 401~405

    [22] Luo Xinmin, Ma Hui, Zhang Jingwen et al.. “Strain-screening” and “constraint breakdown” in laser shock processing[J]. Materials Review, 2010, 20(3): 11~15

    [23] Sui Manling, Wang Yanbo, Cui Jingping et al.. In situ TEM/HRTEM investigations on deformation mechanisms in metals[J]. J. Chinese Electron Microscopy Society, 2010, 29(3): 219~229

    [24] I. A. Ovid′ko, A. G. Sheinerman. Dislocation dipoles in nanocrystalline films[J]. J. Nanosci. Nanotechnol., 2001, 1(2): 215~220

    CLP Journals

    [1] He Huanju, Zhang Lingfeng, Yang Genmei, Lü Yangyang. Friction and Wear Properties of AZ31 Magnesium Alloy by Laser Shock Processing[J]. Chinese Journal of Lasers, 2015, 42(9): 906003

    [2] Luo Xinmin, Han Guangtian, Yang Kun, Chen Kangmin, Zhang Yongkang, Ren Xudong, Luo Kaiyu. Thermo-Induced Regression of Microstructure of Laser-Shocked Surface Modification of 304 Austenitic Stainless Steel[J]. Chinese Journal of Lasers, 2013, 40(2): 203006

    [3] Yan Shixing, Dong Shiyun, Xu Binshi, Wang Yujiang, Xiao Aimin, Lu Jinzhong. Mechanics of Removing Residual Stress of Fe314 Cladding Layers with Laser Shock Processing[J]. Chinese Journal of Lasers, 2013, 40(10): 1003004

    Luo Xinmin, Zhang Jingwen, Ma Hui, Zhang Yongkang, Chen Kangmin, Ren Xudong, Luo Kaiyu. Dislocation Configurations Induced by Laser Shock Processing of 2A02 Aluminum Alloy[J]. Acta Optica Sinica, 2011, 31(7): 714002
    Download Citation