Factors controlling the magnesium weld morphology in deep penetration welding by a CO2 laser

被引:36
|
作者
Marya, M [1 ]
Edwards, GR [1 ]
机构
[1] Colorado Sch Mines, GS Ansell Dept Met & Mat Engn, Ctr Welding Joining & Coatings Res, Golden, CO 80401 USA
关键词
alloy AM50; alloy AZ91; CO2; laser; magnesium alloys; welding;
D O I
10.1361/105994901770344854
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In laser welding with power density beyond 104 W (.) mm(-2), the formation of plasma cavities, commonly referred to as keyholes, leads to deep penetration welds with high aspect ratios. In this paper, the morphologies of keyhole welds produced with a 6 kW CW CO2 laser on two die-cast magnesium alloys, AZ91 and AM50, are compared. It was found that the two magnesium alloys responded differently to laser welding. Though irregular weld cross-section profiles were consistently observed on each material, bead dimensions often varied with the welding variables in contrasting ways. For both alloys, important characteristics of the weld beads such as depth, width, crown height (hump), and surface ripples were analyzed as a function of the welding parameters, most particularly the heat input. Results show that the use of heat input, a variable grouping two welding parameters into one, was often inadequate in characterizing the bead morphology. Several explanations are given, including base metal vaporization, but the process of bremsstralung absorption explains it well and rationalizes many observed characteristics of laser weld morphology.
引用
收藏
页码:435 / 443
页数:9
相关论文
共 50 条
  • [1] Factors controlling the magnesium weld morphology in deep penetration welding by a CO2 laser
    M. Marya
    G. R. Edwards
    [J]. Journal of Materials Engineering and Performance, 2001, 10 : 435 - 443
  • [2] Suppression of welding defects in deep penetration CO2 laser welding
    Tsukamoto, S
    Kawaguchi, I
    Arakane, G
    Kamata, T
    Maekawa, K
    [J]. ICALEO(R) 2000: PROCEEDINGS OF THE LASER MATERIALS PROCESSING CONFERENCE, VOL 89, 2000, 89 : C7 - C15
  • [3] Plasma blowing in deep penetration CO2 laser welding
    Douay, D
    Daniere, F
    Fabbro, R
    Sabatier, L
    [J]. ICALEO'96 - PROCEEDINGS OF THE LASER MATERIALS PROCESSING CONFERENCE, 1996, 81 : D54 - D63
  • [4] Keyhole behavior in deep penetration CO2 laser welding
    Honda, Hiroshi
    Tsukamoto, Susumu
    Kawaguchi, Isao
    Arakane, Goro
    [J]. JOURNAL OF LASER APPLICATIONS, 2010, 22 (02) : 43 - 47
  • [5] Influence of gas jet on weld formation during CO2 laser penetration welding
    Xiao, RS
    Mei, HH
    Zuo, TC
    [J]. LASER PROCESSING OF MATERIALS AND INDUSTRIAL APPLICATIONS, 1996, 2888 : 339 - 345
  • [6] Laser welding volume energy and its influence on weld penetration in laser deep penetration welding
    Harbin Welding Institute, Harbin 150080, China
    [J]. Hanjie Xuebao, 2006, 7 (74-76):
  • [7] CO2 laser welding of magnesium alloys
    Dhahri, M
    Masse, JE
    Mathieu, JF
    Barreau, G
    Autric, M
    [J]. HIGH-POWER LASERS IN MANUFACTURING, 2000, 3888 : 725 - 732
  • [8] The effect of process speed on energy redistribution in deep penetration CO2 laser welding
    Lampa, C
    Kaplan, AFH
    Powell, J
    Magnusson, C
    [J]. HIGH TEMPERATURE MATERIAL PROCESSES, 2000, 4 (02): : 213 - 225
  • [9] Sensing and control system of process quality in CO2 laser deep penetration welding
    Chen, WZ
    Zhang, XD
    Bao, JC
    Wang, Y
    Li, TY
    Jiang, P
    Zhang, HJ
    [J]. LASER PROCESSING OF MATERIALS AND INDUSTRIAL APPLICATIONS II, 1998, 3550 : 287 - 297
  • [10] Effects of gas shielding parameters on weld penetration of CO2 laser-TIG hybrid welding
    Gao, Ming
    Zeng, Xiaoyan
    Hu, Qianwu
    [J]. JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2007, 184 (1-3) : 177 - 183