• Infrared and Laser Engineering
  • Vol. 47, Issue 3, 306005 (2018)
Peng Jin1、2、*, Zhang Wenjie1, Wang Xingxing1, Guo Guoquan1, and Zhang Furong2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: 10.3788/irla201847.0306005 Cite this Article
    Peng Jin, Zhang Wenjie, Wang Xingxing, Guo Guoquan, Zhang Furong. Numerical simulation of effect of filler wire melting and filling mode on molten pool in laser welding[J]. Infrared and Laser Engineering, 2018, 47(3): 306005 Copy Citation Text show less
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    [5] An Haixia, Deng Kun, Bi Zhiyue. Miniaturization and lightweight technology of high-power laser equipment[J]. Chinese Optics, 2017, 10(3): 321-330. (in Chinese)

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    [9] Geiger M, Leitz K H, Koch H, et al. A 3D transient model of keyhole and melt pool dynamics in laser beam welding applied to the joining of zinc coated sheets[J]. Production Engineering, 2009, 3(2): 127-136.

    [10] Sohail M, Han S W, Na S J, et al. Characteristics of weld pool behavior in laser welding with various power inputs[J]. Welding in the World, 2014, 58(3): 269-277.

    [11] Zhao H Y, Niu W C, Zhang B, et al. Modelling of keyhole dynamics and porosity formation considering the adaptive keyhole shape and three-phase coupling during deep-penetration laser welding[J]. Journal of Physics D: Applied Physics, 2011, 44(48): 485302.

    [12] Peng Jin, Li Liqun, Lin Shangyang, et al. High-speed X-ray transmission and numerical study of melt flows inside the molten pool during laser welding of aluminum alloy[J]. Mathematical Problems in Engineering, 2016, 2016: 1409872.

    Peng Jin, Zhang Wenjie, Wang Xingxing, Guo Guoquan, Zhang Furong. Numerical simulation of effect of filler wire melting and filling mode on molten pool in laser welding[J]. Infrared and Laser Engineering, 2018, 47(3): 306005
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