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Numerical Simulation of Current Density Distribution in Keyhole Double-Sided Arc Welding 被引量:3

Numerical Simulation of Current Density Distribution in Keyhole Double-Sided Arc Welding
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摘要 In the double-sided arc welding system (DSAW) composing of PAW+TIG arcs, the PAW arc is guided by the TIG arc so that the current mostly flows through the direction of the workpiece thickness and the penetration is greatly improved. To analyze the current density distribution in DSAW is beneficial to understanding of this process. Considering all kinds of dynamic factors acting on the weldpool, this paper discusses firstly the surface deformation of the weldpool and the keyhole formation in PAW+TIG DSAW process on the basis of the magnetohydrodynamic theory and variation principles. Hence, a model of the current density distribution is developed. Through numerical simulation, the current density distribution in PAW+TIG DSAW process is quantitatively analyzed. It shows that the minimal radius of keyhole formed in PAW+TIG DSAW process is 0.5 mm and 89.5 percent of current flows through the keyhole. In the double-sided arc welding system (DSAW) composing of PAW+TIG arcs, the PAW arc is guided by the TIG arc so that the current mostly flows through the direction of the workpiece thickness and the penetration is greatly improved. To analyze the current density distribution in DSAW is beneficial to understanding of this process. Considering all kinds of dynamic factors acting on the weldpool, this paper discusses firstly the surface deformation of the weldpool and the keyhole formation in PAW+TIG DSAW process on the basis of the magnetohydrodynamic theory and variation principles. Hence, a model of the current density distribution is developed. Through numerical simulation, the current density distribution in PAW+TIG DSAW process is quantitatively analyzed. It shows that the minimal radius of keyhole formed in PAW+TIG DSAW process is 0.5 mm and 89.5 percent of current flows through the keyhole.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2004年第2期228-231,共4页 材料科学技术(英文版)
基金 The authors wish to express their gratitude to the financial support to this project from the project foundation of the National Key Laboratory of Advanced Welding Production Technology of Harbin Institute of Technology and the US National Science Foundation under grant No.DMI 9812981
关键词 PAW+TIG double-sided arc welding Surface deformation of the weldpool KEYHOLE Current density distribution PAW+TIG double-sided arc welding, Surface deformation of the weldpool, Keyhole, Current density distribution
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  • 1[1]Y.M.Zhang and S.B.Zhang: Welding J., 1999, 78(6),202-s.
  • 2[2]Y.M.Zhang and S.B.Zhang: Welding J., 1998, 77(6),57.

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