High Speed Video Camera and Electrical Signal Analyses of Arcs Behavior in a 3-Phase AC Arc Plasma Torch

被引:0
作者
Christophe Rehmet
Frederic Fabry
Vandad Rohani
François Cauneau
Laurent Fulcheri
机构
[1] MINES ParisTech,PERSEE, Centre Procédés, Energies Renouvelables et Systèmes Energétiques
来源
Plasma Chemistry and Plasma Processing | 2013年 / 33卷
关键词
High speed video camera; Arc motion; 3-Phase AC plasma torch; Electric arc;
D O I
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中图分类号
学科分类号
摘要
A 3-phase AC plasma torch has been developed and aims at overcoming some limits of the classical DC torches in terms of efficiency, cost and reliability. However, the arc behavior in 3-phase plasma torch remains poorly explored. This paper is dedicated to the high speed video camera at 100,000 frames per second and electrical signal analyses of arcs behavior in a 3-phase AC arc plasma torch. First, a reference case at 150 A, in nitrogen as working gas, has been deeply analyzed. Afterwards, a parametric study based on current and inter-electrode gap has been carried out. Results show that only one arc can exist at a given time and arcs rotate by switching from a pair of electrodes to another one, following the maximal electrical gap potential. However, a particular “abnormal” arc behavior was sometimes observed. Indeed, the arc motion within the inter-electrode gap increases the heat exchange and stabilizes the 3-phase discharge whereas the system is unbalanced when the arc is in the periphery. The analysis highlights that the arc motion is strongly influenced by the electrode jet velocity and repulsive Lorentz forces. The parametric study shows that the current increases both jet velocity and arc discharge stability. Elsewhere, the increase of the inter-electrode gap can also stabilizes the electrical 3-phase arc discharge. Furthermore, the correlation between arc motion and current waveform is highlighted. This work is likely to open the way toward a better understanding of 3-phase discharges in the perspective of their further optimization.
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页码:779 / 796
页数:17
相关论文
共 64 条
[1]  
Fauchais P(2010)From powders to thermally sprayed coatings J Therm Spray Technol 19 56-80
[2]  
Montavon G(2007)Carbon nanostructures production by gas-phase plasma processes at atmospheric pressure J Phys D Appl Phys 40 2361-2374
[3]  
Bertrand G(1997)Numerical modeling of electric arcs J Eng Phys Thermophys 70 530-543
[4]  
Gonzalez-Aguilar J(2010)The effects of metal vapour in arc welding J Phys D Appl Phys 43 434001-3264
[5]  
Moreno M(2008)Thermal plasma waste treatment J Phys D Appl Phys 41 053001-515
[6]  
Fulcheri L(2010)Guest editorial classification of plasma systems for plasma-assisted combustion Plasma Sci, IEEE Trans 38 3257-426
[7]  
Bakken J(2013)3D unsteady state MHD modeling of a 3-Phase AC hot graphite electrodes plasma torch Plasma Chem Plasma Process 33 491-89
[8]  
Gu L(2009)High-speed imaging in plasma arc cutting: a review and new developments Plasma Sources Sci Technol 18 023001-163
[9]  
Larsen H(2010)High-speed imaging investigation of transition phenomena in the pilot arc phase in Hf cathodes for plasma arc cutting Plasma Sources Sci Technol 19 065025-6
[10]  
Sevastyanenko V(2012)Advances in plasma arc cutting technology: the experimental part of an integrated approach Plasma Chem Plasma Process 32 411-1564