Elucidation of the weld pool convection and keyhole formation mechanism in the keyhole plasma arc welding

被引:72
作者
Wu, Dongsheng [1 ,3 ]
Anh Van Nguyen [1 ,2 ]
Tashiro, Shinichi [1 ]
Hua, Xueming [3 ]
Tanaka, Manabu [1 ]
机构
[1] Osaka Univ, JWRI, 11-1 Mihogaoka, Ibaraki, Osaka 5670047, Japan
[2] Murata Welding Labs Ltd, Yodogawaku 4-6-11, Osaka 5320012, Japan
[3] Shanghai Jiao Tong Univ, Shanghai Key Lab Mat Laser Proc & Modificat, Shanghai 200240, Peoples R China
关键词
Keyhole plasma arc welding; Self-adaptive heat source; Plasma shear stress; X-ray transmission system; NUMERICAL-ANALYSIS; FLUID-FLOW; HEAT-TRANSFER; LASER; SIMULATION; BEHAVIORS; PRESSURE; POROSITY; SYSTEM; GTA;
D O I
10.1016/j.ijheatmasstransfer.2018.11.108
中图分类号
O414.1 [热力学];
学科分类号
摘要
An electrode-arc model, and a three dimensional weld pool model considering the self-adaptive heat source, the shear stress caused by plasma flow, and the deformation of the top and bottom surfaces, are developed to investigate the weld pool convection and keyhole formation mechanism in the keyhole plasma arc welding. With the help of the X-ray transmission system, high-speed video camera and thermal camera, the fluid flow and the temperature distribution of the weld pool are studied. The numerical and experimental results show that: after the penetrated keyhole formation, two convective eddies are formed inside the weld pool. The molten metal flows backward at the top surface of the weld pool, and flows downward and backward at the bottom surface of the weld pool. The low temperature distribution in the weld pool is attributed to the strong fluid flow and energy transportation caused by the much high arc pressure and plasma shear stress. Both the arc pressure driven weld pool deformation and shear stress driven weld pool deformation are responsible for the keyhole formation, and the first mechanism is especially dominant. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:920 / 931
页数:12
相关论文
共 43 条
[1]   Arc pressure and fluid flow during alternating shielding gases. Part 2: arc force determination [J].
Campbell, S. W. ;
Galloway, A. M. ;
McPherson, N. A. .
SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 2013, 18 (07) :597-602
[2]   Blasting type penetrating characteristic in variable polarity plasma arc welding of aluminum alloy of type 5A06 [J].
Chen, Shujun ;
Xu, Bin ;
Jiang, Fan .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2018, 118 :1293-1306
[3]   CFD based visualization of the finger shaped evolution in the gas metal arc welding process [J].
Cheon, Jason ;
Kiran, Degala Venkata ;
Na, Suck-Joo .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2016, 97 :1-14
[4]   Modeling and simulation of arc: Laser and hybrid welding process [J].
Cho, Dae-Won ;
Cho, Won-Ik ;
Na, Suck-Joo .
JOURNAL OF MANUFACTURING PROCESSES, 2014, 16 (01) :26-55
[5]   Simulations of weld pool dynamics in V-groove GTA and GMA welding [J].
Cho, Dae-Won ;
Na, Suck-Joo ;
Cho, Min-Hyun ;
Lee, Jong-Sub .
WELDING IN THE WORLD, 2013, 57 (02) :223-233
[6]   Numerical simulation of molten pool dynamics in high power disk laser welding [J].
Cho, Won-Ik ;
Na, Suck-Joo ;
Thomy, Claus ;
Vollertsen, Frank .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2012, 212 (01) :262-275
[7]   Keyhole formation and collapse in plasma arc welding [J].
Fan, HG ;
Kovacevic, R .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1999, 32 (22) :2902-2909
[8]  
IRVING B, 1992, WELD J, V71, P49
[9]  
Irving B., 1997, WELD J, V76, P34
[10]   A unified 3D model for an interaction mechanism of the plasma arc, weld pool and keyhole in plasma arc welding [J].
Jian, Xiaoxia ;
Wu, ChuanSong ;
Zhang, Guokai ;
Chen, Ji .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2015, 48 (46)