The Study of Welding Power-Arc System Stability Based on DFCD

Article Preview

Abstract:

Regarding welding power-arc system stability (WPSS) as the research object, the paper uses differential theory and considers the full load conditions from the external circuit on the course of dynamic welding, and some models about WPSS are found, they can obtain the analytic expression of system stability coefficient, and a qualitative analysis of WPSS' conditions is so born, on this basis, by the method of the relative conversion of current deviation, a dynamic factor of current deviation (DFCD) is obtained by analytical equation,then to quantify stability of the system by the way of decay time of deviation. Test's results, based on analysis of voltage and current waveforms, are the same to quantify the WPSS based on DFCD.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 284-286)

Pages:

141-146

Citation:

Online since:

July 2011

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2011 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Shisheng, Huang. The power for arc welding and digital control. [M]. Beijing: Mechanical Industry Press, 2007.35-36.

Google Scholar

[2] Kang MJ, Rhee S. arc stability estimation and control for arc stabilization in short circuit transfer mode of C02 arc welding. Science and Technology of welding and Joining, 200l, 6 (2): 95-102.

DOI: 10.1179/136217101101538596

Google Scholar

[3] Tusek, Janez, (Inst za varilstvo Ptujska). Influence of wire extension length on the welding process [J]. International Journal for the Joining of Materials, 1996, 8(3): 112-120.

Google Scholar

[4] W.-P.Sung, K-S. Chen, M-H. Shih. Quantity analysis for welding performance in manufacturing processes [J]. Manuf Technol, 2004, 23:707-711.

Google Scholar

[5] Lu shanping, FUJII HIDETOSHI, NOGI KIYOSHI.Effects of CO2 shielding gas additions and welding speed on GTA weld shape. [J] Journal of Materials Science 40 (2005) 2481–2485.

DOI: 10.1007/s10853-005-1979-7

Google Scholar

[6] Shisheng, Huang. Arc Power [M]. Beijing: Mechanical Industry Press, 2004.4-30.

Google Scholar

[7] Shuyan Yin. The Principles and Adjustment of the Welding Equipments for GMAW. [M]. Beijing: Mechanical Industry Press, 2000. 5-25, 35-44.

Google Scholar

[8] L.T. Magazinnik, G.G. Magazinnik, A.G. Magazinnik.Power coefficient and power circuits of modern inverter-type welders.[J] Russian Electrical Engineering, Volume 08, Number6, 331-336.

DOI: 10.3103/s106837120906008x

Google Scholar

[9] Yu. M. Mironov, Effect of the secondary current lead resistances on the properties of an arc steel-melting furnace as a receiver and transformer of electric power. [J]. 2009, No. 5, p.13–18

DOI: 10.1134/s0036029509080138

Google Scholar

[10] Marco Ramírez, Gerardo Trapaga.Mathematical modeling of a direct current electric arc: Part I. Analysis of the characteristics of a direct current arc.[J] Metallurgical and Materials Transactions B, 2004, Volume 35, Number 2, Pages 363-372.

DOI: 10.1007/s11663-004-0036-2

Google Scholar

[11] V A Lebedev, V S Romanyuk.Single-phase welding current power sources for mechanised carbon dioxide welding. [J] Welding International, 2004, Volume 18, Number 6, Pages 489-493.

DOI: 10.1533/wint.2004.3309

Google Scholar

[12] G. P. Kornilov, A. A. Nikolaev, A. Yu. Kovalenko, E. A. Kuznetsov. Means and trends of reactive power management at large ironworks. [J]. Russian Electrical Engineering, 2008, Volume 79, Number 5, Pages 248-253.

DOI: 10.3103/s1068371208050052

Google Scholar