• Infrared and Laser Engineering
  • Vol. 46, Issue 5, 506004 (2017)
Qin Lanyun*, Pang Shuang, Yang Guang, Wang Chao, and Wang Wei
Author Affiliations
  • [in Chinese]
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    DOI: 10.3788/irla201746.0506004 Cite this Article
    Qin Lanyun, Pang Shuang, Yang Guang, Wang Chao, Wang Wei. Microstructure and micro-hardness of laser deposition repair ZL114A aluminum alloy[J]. Infrared and Laser Engineering, 2017, 46(5): 506004 Copy Citation Text show less
    References

    [1] Casalino G, Mortello M, Paola Leo, et al. Study on arc and laser powers in the hybrid welding of AA574 Al-alloy[J]. Materials and Design, 2014, 61: 191-198.

    [2] Ma Siqun, Gu Lixiang, Yuan Yongwen, et al. Research on influence of welding defects on fatigue life of EMU aluminum-alloy car body[J]. Journal of the China Railway Society, 2014, 36(2): 42-48. (in Chinese)

    [3] Lin Xin, Huang Weidong. High-performance laser gain material of metal components manufacturing[J]. Scientia Sinica Informationis, 2015, 45(9): 1111-1126. (in Chinese)

    [4] Wang Huaming. Materials fundamental issues of laser additive manufacturing for high-performance large metallic components[J]. Acta Aeronautic et Astronautica Sinica, 2014, 35(10): 2690-2698. (in Chinese)

    [5] Watkins K G, McMahon M A, Streen W M. Microstructure and corrosion properties of laser surface processed aluminium alloys: a review[J]. Materials Science and Engineering A, 1997, 231(1-2): 55-61.

    [6] Zhuang W, Liu Q, Djugum R, et al. Deep surface rolling for fatigue life enhancement of laser clad aircraft aluminium alloy[J]. Applied Surface Science, 2014, 320: 558-562.

    [7] Ehsan Toyserkani, Stephen Corbin, Amir Khajepour. Laser Cladding[M]. New York: CRC Press, 2005.

    [8] Wang Xiaoyan, Chen Jing, Lin Xin, et al. Microstructure of laser forming repair 7050 aluminum alloy with AlSi12 powder[J]. Chinese of Journal of Lasers, 2009, 36(6): 1585-1590. (in Chinese)

    [9] Xue Lei, Huang Yixiong, Lu Penghui, et al. Study on microstructure and property of laser forming repaired ZL104 alloy[J]. China Surface Engineering, 2010, 23(1): 97-100. (in Chinese)

    [10] Zuo Tiechuan. Laser Material Processing of High Strength Aluminum Alloy[M]. Beijing: National Defence Industry Press, 2002: 2-10. (in Chinese)

    [11] Chen Xiaoming, Song Renguo, Zhang Yu, et al. Effects of overfire on microstructure and properties of 7003 aluminum alloy[J]. Light Alloy Fabrication Technology, 2009, 37(2): 48-52. (in Chinese)

    [12] Zhou Wansheng, Yao Junshan. The Welding of Aluminium and Aluminium Alloy[M]. Beijing: China Machine Press, 2007: 40-46. (in Chinese)

    [13] Huang Weidong. Laser Solid Forming[M]. Xi′an: Northwestern Polytechnical University Press, 2007: 57-60. (in Chinese)

    [14] Shi Lei, Wang Youqi, Wang Ying, et al. Effect of solution treatment on microstructure and mechanical properties of quasi eutectivc Al-Si Alloy[J]. The Chinese Journal of Nonferrous Metals, 2012, 22(12): 3372-3377. (in Chinese)

    [15] Chen Yongcheng, Zhang Shuquan, Tian Xiangjun, et al. Microstructure and microhardness of 4045 aluminium alloy fabricated by laser melting deposition.[J]. Chinese of Journal of Lasers, 2015, 42(3): 0303008. (in Chinese)

    [16] Wang Aiqin, Xie Jingpei, Liu Zhongxia, et al. Microstructure and phase structure of rapidly solidified Al-Si alloy[J]. Transactions of Materials and Heat Treatment, 2008, 29(2): 99-102. (in Chinese)

    Qin Lanyun, Pang Shuang, Yang Guang, Wang Chao, Wang Wei. Microstructure and micro-hardness of laser deposition repair ZL114A aluminum alloy[J]. Infrared and Laser Engineering, 2017, 46(5): 506004
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