A 3D arc-droplet-molten pool integrated model of Al alloy GMAW process: Heat transfer, fluid flow and the effect of external magnetic field

被引:39
作者
Zhao, Wenyong [1 ]
Jin, Hongxi [1 ]
Du, Xinwei
Chen, Jicheng [2 ]
Wei, Yanhong [1 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, Coll Mat Sci & Technol, Nanjing 210016, Peoples R China
[2] Nanjing Univ Aeronaut & Astronaut, Coll Comp Sci & Technol, MIIT Key Lab Pattern Anal & Machine Intelligence, Nanjing 210016, Peoples R China
基金
中国博士后科学基金;
关键词
Heat transfer; Fluid flow; External magnetic field; Integrated model; Aluminum alloy; WELDING PROCESSES; METAL TRANSFER; PLASMA;
D O I
10.1016/j.vacuum.2022.111129
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
GMAW is one of the principal processes for the fabrication of aluminum alloy components, and the external magnetic field (EMF) is innovatively introduced to assist in improving forming quality and mechanical properties. To deeply understand the action mechanism of the EMF and provide a sufficient basis for process parameters optimization, we have developed an arc-droplet-molten pool integrated model to investigate the effect of EMF on the behaviors of heat transfer and fluid flow. The integrated model is firstly validated by comparing the droplet shapes between simulated results and experimental observations, which present great agreements. Regardless of whether there is an EMF, the temperature distribution of the arc plasma, as well as the arc shape, is no longer rotationally symmetric. A moderate magnetic flux density of EMF will not only compress the arc plasma and decrease the average temperature of droplet metal, but enhance the peak velocity of plasma and expand the high-velocity plasma zone. In addition, an EMF will reduce the dimensions of the molten pool in the early stages of welding because of the enhancement of metal spread and heat dissipation, and also significantly change the flow pattern of liquid metal in the molten pool.
引用
收藏
页数:14
相关论文
共 46 条
[1]   A CONTINUUM METHOD FOR MODELING SURFACE-TENSION [J].
BRACKBILL, JU ;
KOTHE, DB ;
ZEMACH, C .
JOURNAL OF COMPUTATIONAL PHYSICS, 1992, 100 (02) :335-354
[2]   3D heat transfer, fluid flow and electromagnetic model for cold metal transfer wire arc additive manufacturing (Cmt-Waam) [J].
Cadiou, S. ;
Courtois, M. ;
Carin, M. ;
Berckmans, W. ;
Le Masson, P. .
ADDITIVE MANUFACTURING, 2020, 36
[3]   Heat transfer, fluid flow and electromagnetic model of droplets generation and melt pool behaviour for wire arc additive manufacturing [J].
Cadiou, S. ;
Courtois, M. ;
Carin, M. ;
Berckmans, W. ;
Le Masson, P. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2020, 148
[5]   Numerical analysis of arc plasma behavior in double-wire GMAW [J].
Ding Xueping ;
Li Huan ;
Wei Huiliang ;
Liu Jiquan .
VACUUM, 2016, 124 :46-54
[6]   A unified model of transport phenomena in gas metal arc welding including electrode, arc plasma and molten pool [J].
Fan, HG ;
Kovacevic, R .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2004, 37 (18) :2531-2544
[7]   Wire Arc Additive Manufacturing (WAAM) of Aluminum Alloy AlMg5Mn with Energy-Reduced Gas Metal Arc Welding (GMAW) [J].
Gierth, Maximilian ;
Henckell, Philipp ;
Ali, Yarop ;
Scholl, Jonas ;
Bergmann, Jean Pierre .
MATERIALS, 2020, 13 (12) :1-22
[8]   Numerical Simulation of Arc and Droplet Behaviors in TIG-MIG Hybrid Welding [J].
Han, Yu ;
Chen, Ji ;
Ma, Haijun ;
Zhao, Xinyu ;
Wu, Chuansong ;
Gao, Jinqiang .
MATERIALS, 2020, 13 (20) :1-15
[9]   Numerical simulation of arc and droplet transfer in pulsed GMAW of mild steel in argon [J].
Hertel, M. ;
Rose, S. ;
Fuessel, U. .
WELDING IN THE WORLD, 2016, 60 (05) :1055-1061
[10]   Numerical simulation of droplet detachment in pulsed gas-metal arc welding including the influence of metal vapour [J].
Hertel, M. ;
Spille-Kohoff, A. ;
Fuessel, U. ;
Schnick, M. .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2013, 46 (22)