[1]
Wang Zongjie. Welding method and equipments [M]. Beijing: China Machine Press, (2005).
Google Scholar
[2]
Manh Dung Ngo, Vo Hoang Duy, Nguyen Thanh Phuong. Development of digital gas metal arc welding system [J]. Journal of Materials Processing Technology, 189 (2007) 384–391.
DOI: 10.1016/j.jmatprotec.2007.02.010
Google Scholar
[3]
Wen Yuanmei, Huang Shisheng, Xue Jiaxiang, etc. Observed and analysed unstable transition Process of Pulse MIG Welding [J]. Welding journal 2008, 29(4): 13-17.
Google Scholar
[4]
Amin N. Pulsed current parameters for arc stability and controlled metal transfer in arc welding [J]. Metal Construction, 1983(5): 272-278.
Google Scholar
[5]
Allum C J. Metal transfer in arc welding as a varicose instability [J]. Journal of Physics D: Applied Physics, 1985(18): 1447-1468.
DOI: 10.1088/0022-3727/18/7/030
Google Scholar
[6]
Jiang Weiyan, Zhang Jiuhai, Zhao Chongyi. Molten drops transition behaviors of pulse MIG(MAG) Welding[J] Welding journal, 1994, 15(1).
Google Scholar
[7]
Peng Haiyan, Huang Shisheng, Wu Kaiyuan, et al. Digital control system of pulse MIG based on DSP [J] Welding journal, 2008, 29(9): 64-66.
Google Scholar
[8]
Xv Wei. Manufacture of digital control system of Pulse MIG [D]. Shandong: Shandong University, (2008).
Google Scholar
[9]
Yang Wenjie, Liao Ping. PMIG Welder based on DSP[J]. Welding journal, 2007, 28(7): 77-80.
Google Scholar
[10]
Manh Dung Ngo, Vo Hoang Duy, Nguyen Thanh Phuong, et al. Development of digital gas metal arc welding system [J]. Journal of Materials Processing Technology, 189 (2007): 384–391.
DOI: 10.1016/j.jmatprotec.2007.02.010
Google Scholar
[11]
Xiong Jingqing, Meng Wanjun, Xiong Danfeng, et al. Effect of different peak current to dipulse MIG welding [J]. Welding technique, 2009, 28(3) 6-9.
Google Scholar
[12]
Yin Shuyan. Technical Foundation of Gas Shielded Welding [M]. Beijing: China Machine Press, (2007).
Google Scholar
[13]
Xv Qiang, Guo Xu-ming, Wang Zongjie. et al. Effect to Microstructure and property of Al-Cu alloy welded joint by dispulse MIG welding [J]. Hot Working Technology, 2004(10): 4-6.
Google Scholar
[14]
WEI Zhan-jing. Germanic Cloos digital welder [J]. Modern Welding, 2006. (4): 36.
Google Scholar
[15]
Hackl H. MIG brazing of galvanized light-gauge sheets [J]. Welding Review International, 1998(11): 122-123.
Google Scholar
[16]
SHI Chang-liang. Study of Al and galvanized steel MIG brazing welding technology by CMT method[D]. Haerbin: Harbin Institute of Technology, 2006, 1-3.
Google Scholar
[17]
H.T. Zhang, J.C. Feng, P. He,H. Hack. Interfacial microstructure and mechanical properties of aluminium–zinc-coated steel joints made by a modified metal inert gas welding–brazing process [J]. Materials Characterization, 58 (2007) 588–592.
DOI: 10.1016/j.matchar.2006.07.008
Google Scholar
[18]
http: /www. fronius. com. cn/fronius_cn/equipment/mig_mag. asp.
Google Scholar
[19]
Liao Ping, Huang Peng fei, YIN Shu yan. etc. Variable polarity pulsed metal inert-gas control system [J]. Transactions of The China Welding Institution. 2006, 27(3): 53-56.
Google Scholar
[20]
Hang Zhengxiang, WANG Jiang, LI Li, etc. Control of variable Polarity Pulse MIG Welding[J]. Electric Welding Machine. 2006, 36(2): 30-33.
Google Scholar
[21]
D. Sc. Janez Tusek. Mathematical modeling of melting rate in twin-wire welding [J]. Journal of Materials Processing Technology, 100 (2000): 250–256.
DOI: 10.1016/s0924-0136(99)00485-9
Google Scholar
[22]
Cao Qingmei, Zou Zengda, Zhang Shun-shan. Present Situation and Development of Twin-wire Arc Welding [J]. Journal of Shandong University of Science and Technology (Natural Science). 2008, 27(2): 90.
Google Scholar
[23]
LI Huan, LIANG Xiujuan, LI Xing-cheng. et al. System and technology of high-efficiency double wire pulse MIG/MAG welding[J]. Welding, 2005(10): 24-26.
Google Scholar
[24]
Li Xing-lin, Huang Shi-sheng, WU Kai-yuan, etc. Research of the High-speed Double Wire Pulsed MIG Welding [J]. Power Electronics, 2008, 42(3): 39-40.
Google Scholar
[25]
Huang Shisheng, Miao Zheng-ping, Wu Kaiyuan, et al. Research on digital waveform control for integrative twin-wire pulsed MIG welding based on DSP [J]. Electric Welding Machine, 2009, 39(8): 49-53.
Google Scholar
[26]
EsseIs W G, Liefkens A C. Plasma-MIG welding developed by Philips [J]. Machinery and Production Engineering, 1972, 121(3129) : 632-633.
Google Scholar
[27]
Anon. Plasma-MIG rolls over SA for steel plant repairs [J]. Welding and Metal Fabrication, 1981, 49(8): 465—467.
Google Scholar
[28]
Anon. Hasma-MIG boosts tank output [J]. Welding Design & Fabrication, 1983, 56(2): 54—55.
Google Scholar
[29]
Kaidrle S, Bongard K, Dahmen M. etal. Innovative hybrid welding process in an industrial application. Proceedings of 19th International Congress on ICALEO 2000, Ssction C-ICA LEO, 2000, 91-98.
DOI: 10.2351/1.5059449
Google Scholar
[30]
Chen Yanbin, Li Li-qun, Wu Lin. Quantitative measurement of absorption and defocusing of laser beam by electric arc [J]. Transactions of The China Welding Institution, 2003, 24(3): 56-58.
Google Scholar
[31]
Lei Zhenglong, CHEN Yanbin, Li Liqun. et al. Character of projected transfer molten drop by CO2 laser-MIG hybrid welding [J]. Applied Laser, 2004, 24(6): 361-364.
Google Scholar
[32]
G. Campana, A. Fortunato, A. Ascari, et al. The influence of arc transfer mode in hybrid laser-MIG welding [J]. Journal of Materials Processing Technology, 191 (2007): 111–113.
DOI: 10.1016/j.jmatprotec.2007.03.001
Google Scholar
[33]
Information on http: /www. hglaser. com/html/article_1532. html.
Google Scholar
[34]
Chen Jian. Development of hybrid heat source welding technology [J]. Welding, 1994(9): 4.
Google Scholar
[35]
Zhou Fangming, Yu Zhishui, Wang Yu, et al. Study on shaping mechanism of weld for TIG-MIG double-sided symmetrical arc welding [J]. Chinese Journal of Mechanical Engineering, 2004, 40(4): 58-61.
DOI: 10.3901/jme.2004.04.058
Google Scholar