Characterizations of welding mode transformation process during 1-μm and 10-μm laser welding

被引:4
|
作者
Guo, S. H. [1 ]
Zou, J. L. [1 ]
Xiao, R. S. [1 ]
机构
[1] Beijing Univ Technol, Inst Laser Engn, High Power & Ultrafast Laser Mfg Lab, Beijing 100124, Peoples R China
基金
中国国家自然科学基金;
关键词
PLASMA PLUME; ALUMINUM; ARC; KEYHOLE; VAPOR; POOL;
D O I
10.1063/1.5132776
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
To reveal the enhancing energy coupling effect of plasma, a comparison of the welding mode transformation process during 1-mu m and 10-mu m laser welding of aluminum alloys is carried out through experimental observation and theoretical analysis. The heat conduction welding stage hardly exists in 10-mu m laser welding and obviously exists in 1-mu m laser welding. Alloy composition and surface roughness of the welded plate hardly influence the deep penetration welding threshold (DPWT) of the 10-mu m laser, whereas they have a significant impact on that of the 1-mu m laser. In addition, 1-mu m laser welding and 10-mu m laser welding have similar DPWTs. These phenomena are attributed to the formation of plasma near the workpiece surface during 10-mu m laser welding owing to metal vapor breakdown by 10-mu m laser irradiation. The plasma remarkably enhances the energy coupling between the 10-mu m laser and workpiece by thermal conduction, and the DPWT of the 10-mu m laser is thus reduced to approximately equal to that of the 1-mu m laser. (c) 2020 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Study on welding mode transition and stability of welding process in laser welding
    Cheng, Wuzhu
    Zhang, Xudong
    Ren, Jialie
    Wang, Zhenjia
    Huang, Guoqing
    Zhang, Hongjun
    Zhongguo Jiguang/Chinese Journal of Lasers, 1996, 23 (07): : 657 - 661
  • [2] Experimental and theoretical characterization of deep penetration welding threshold induced by 1-μm laser
    Zou, J. L.
    He, Y.
    Wu, S. K.
    Huang, T.
    Xiao, R. S.
    APPLIED SURFACE SCIENCE, 2015, 357 : 1522 - 1527
  • [3] Welding mode transition and process stability in high power laser welding
    张旭东
    任家烈
    陈武柱
    China Welding, 1997, (01) : 64 - 69
  • [4] Fresnel absorption of 1 μm- and 10 μm-laser beams at the keyhole wall during laser beam welding: Comparison between smooth and wavy surfaces
    Kaplan, Alexander F. H.
    APPLIED SURFACE SCIENCE, 2012, 258 (08) : 3354 - 3363
  • [5] Scaling laws for the laser welding process in keyhole mode
    Fabbro, Remy
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2019, 264 : 346 - 351
  • [6] PROCEDURE FOR INVESTIGATING PROCESS OF TRANSFORMATION OF AUSTENITE DURING WELDING
    PROKHORO.NN
    NOVIKOV, NN
    AUTOMATIC WELDING USSR, 1972, 25 (04): : 72 - &
  • [7] Crystal growth during keyhole mode laser welding
    Wei, H. L.
    Elmer, J. W.
    DebRoy, T.
    ACTA MATERIALIA, 2017, 133 : 10 - 20
  • [8] 2.0 μm Laser Transmission Welding: Welding of transparent and opaque polymers with single-mode Tm-doped fiber lasers
    Fuhrberg, Peter
    Ahrens, Anja
    Schkutow, Andreas
    Frick, Thomas
    PhotonicsViews, 2020, 17 (02) : 64 - 68
  • [9] Effect of filler wire melting mode on laser welding process
    Peng J.
    Wahg X.
    Ni Z.
    Zhang Z.
    Li L.
    Hanjie Xuebao/Transactions of the China Welding Institution, 2020, 41 (02): : 64 - 67
  • [10] Modeling of conduction mode laser welding process for feedback control
    Tsai, FR
    Kannatey-Asibu, E
    JOURNAL OF MANUFACTURING SCIENCE AND ENGINEERING-TRANSACTIONS OF THE ASME, 2000, 122 (03): : 420 - 428