Contamination of Coupling Glass and Performance Evaluation of Protective System in Vacuum Laser Beam Welding

被引:8
作者
Lee, Yongki [1 ,2 ]
Cheon, Jason [1 ]
Min, Byung-Kwon [2 ]
Kim, Cheolhee [1 ,3 ]
机构
[1] Korea Inst Ind Technol, Joining Res Grp, Incheon 21999, South Korea
[2] Yonsei Univ, Dept Mech Engn, Seoul 03722, South Korea
[3] Portland State Univ, Dept Mech & Mat Engn, Portland, OR 97201 USA
来源
APPLIED SCIENCES-BASEL | 2019年 / 9卷 / 23期
关键词
laser welding; vacuum; coupling glass; contamination; shielding gas; protective system; welding consistency; ALUMINUM-ALLOY; HIGH-POWER;
D O I
10.3390/app9235082
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Vacuum laser beam welding enables deeper penetration depth and welding stability than atmospheric pressure laser welding. However, contaminated coupling glass caused by welding fumes in the vacuum space reduces laser transmittance, leading to inconsistent penetration depth. Therefore, a well-designed protective system is indispensable. Before designing the protective system, the contamination phenomenon was quantified and represented by a contamination index, based on the coupling glass transmittance. The contamination index and penetration depth behavior were determined to be inversely proportional. A cylindrical protective system with a shielding gas supply was proposed and tested. The shielding gas jet provides pressure-driven contaminant suppression and gas momentum-driven contaminant dispersion. The influence of the shielding gas flow rate and gas nozzle diameter on the performance of the protective system was evaluated. When the shielding gas flow was 2.0 L/min or higher, the pressure-driven contaminant suppression dominated for all nozzle diameters. When the shielding gas flow was 1.0 L/min or lower, gas momentum-driven contaminant dispersion was observed. A correlation between the gas nozzle diameter and the contamination index was determined. It was confirmed that contamination can be controlled by selecting the proper gas flow rate and supply nozzle diameter.
引用
收藏
页数:13
相关论文
共 13 条
  • [1] Arata Y., 2019, T JWRI, V14, P217
  • [2] Beer F.P., 2006, VECTOR MECH ENG DYNA, P166
  • [3] Blackburn J, 2012, WOODHEAD PUBL MATER, P75
  • [4] Comparative study on laser welding characteristics of aluminium alloy under atmospheric and subatmospheric pressures
    Cai, C.
    Peng, G. C.
    Li, L. Q.
    Chen, Y. B.
    Qiao, L.
    [J]. SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 2014, 19 (07) : 547 - 553
  • [5] Herbert S, 2004, WELD J, V83, P39
  • [6] Jakobs S., 2015, THESIS
  • [7] Katayama S., 2011, T JWRI, V40, P15
  • [8] Munson B.R., 2001, FUNDAMENTALS FLUID M, P101
  • [9] Laser beam welding under vacuum of high grade materials
    Reisgen, Uwe
    Olschok, Simon
    Jakobs, Stefan
    Turner, Christoph
    [J]. WELDING IN THE WORLD, 2016, 60 (03) : 403 - 413
  • [10] Reitemeyer D., 2009, ICALEO, 28th International Conference on Applications of Lasers Electro-Optics, V28, P751