Comparisons of Two Models for the Simulation of a DC Arc Plasma Torch

被引:3
|
作者
Renzhong Huang
Hirotaka Fukanuma
Yoshihiko Uesugi
Yasunori Tanaka
机构
[1] Plasma Giken Co.,
[2] Ltd,undefined
[3] Kanazawa University,undefined
来源
关键词
arc root fluctuation; local thermodynamic equilibrium; non-transferred plasma torch; plasma arc;
D O I
暂无
中图分类号
学科分类号
摘要
The hypothesis of local thermal equilibrium (LTE) in thermal plasma has been widely accepted. Most of the simulation models for the arc plasma torch are based on the hypothesis of LTE and its results indicate good validity to mimic the pattern of plasma flow inside a plasma torch. However, according to the LTE hypothesis, electrical conductivity near electrodes is significantly lower because of the low gas temperature. Consequently, it is difficult for electrical current flows to pass between the anode and cathode. Therefore, the key subject for a model concentrating on the LTE assumption is to deal with the low electrical conductivity near the electrodes. In this study, two models determining the electrical conductivity at the vicinity of the electrodes with two different assumptions were used to calculate the flow patterns inside a non-transferred DC arc plasma torch. Gas temperature, velocity, voltage drop, and heat energy of the plasma arc were compared between the two models. The results indicated that the plasma arc inside the plasma torch fluctuates, as simulated by both models. It seems that the model can obtain comparable accuracy with the experimental results if the plasma gas electrical conductivity is determined by nominal electron temperature.
引用
收藏
页码:183 / 191
页数:8
相关论文
共 50 条
  • [21] Simulation of characteristics of DC plasma arc
    State Key Laboratory of Advanced Metallurgy, University of Science and Technology Beijing, Beijing
    100083, China
    Hanjie Xuebao, 12 (27-30):
  • [22] Measurement of Anode Arc Attachment Movement in DC Arc Plasma Torch at Atmospheric Pressure
    Ondac, P.
    Maslani, A.
    Hrabovsky, M.
    Jenista, J.
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 2018, 38 (03) : 637 - 654
  • [23] Two-Temperature Chemical Non-equilibrium Modeling of Argon DC Arc Plasma Torch
    Jiang-Hong Sun
    Su-Rong Sun
    Li-Hui Zhang
    Hai-Xing Wang
    Plasma Chemistry and Plasma Processing, 2020, 40 : 1383 - 1400
  • [24] Two-Temperature Chemical Non-equilibrium Modeling of Argon DC Arc Plasma Torch
    Sun, Jiang-Hong
    Sun, Su-Rong
    Zhang, Li-Hui
    Wang, Hai-Xing
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 2020, 40 (06) : 1383 - 1400
  • [25] Control of the Arc Motion in DC Plasma Spray Torch with a Cascaded Anode
    Zhukovskii, Rodion
    Chazelas, Christophe
    Vardelle, Armelle
    Rat, Vincent
    JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2020, 29 (1-2) : 3 - 12
  • [26] Experimental study on the life and performance of an improved DC arc plasma torch
    Hu, Ya-Hao
    Sun, Su-Rong
    Meng, Xian
    Huang, He-Ji
    Wang, Hai-Xing
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2024, 57 (20)
  • [27] Arc root motion in an argon-hydrogen dc plasma torch
    Huang, Heji
    Pan, Wenxia
    Wli, Chengkang
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2008, 36 (04) : 1050 - 1051
  • [28] Velocity measurements for arc jets produced by a DC plasma spray torch
    Planche, MP
    Coudert, JF
    Fauchais, P
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 1998, 18 (02) : 263 - 283
  • [29] Multiscale finite element modeling of arc dynamics in a DC plasma torch
    Trelles, Juan Pablo
    Pfender, Emil
    Heberlein, Joachim
    PLASMA CHEMISTRY AND PLASMA PROCESSING, 2006, 26 (06) : 557 - 575
  • [30] An Improved Local Thermal Equilibrium Model of DC Arc Plasma Torch
    Huang, Renzhong
    Fukanuma, Hirotaka
    Uesugi, Yoshihiko
    Tanaka, Yasunori
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2011, 39 (10) : 1974 - 1982