期刊文献+

Two-Dimensional Simulation of Hydrogen Direct-Current Discharge Plasma

Two-Dimensional Simulation of Hydrogen Direct-Current Discharge Plasma
下载PDF
导出
摘要 A two-dimensional model of a weakly-ionized hydrogen direct-current (DC) discharge at low pressure is simulated. In the model, the metal electron overflow and secondary electron emission coefficient at the cathode spot axe introduced to represent the relationship between the electron and ion density, and the electron energy distribution function is expressed by kinetic theory. The electron current density and reaction constant reasonably set on the boundary are discussed. It is determined that 11 collision reactions play a major role in low pressure and weakly ionized hydrogen discharge. On this basis, the relationship between mobility, electrode spacing, and breakdown voltage is verified. Good agreement is achieved between the simulation curve and Paschen curve. A two-dimensional model of a weakly-ionized hydrogen direct-current (DC) discharge at low pressure is simulated. In the model, the metal electron overflow and secondary electron emission coefficient at the cathode spot axe introduced to represent the relationship between the electron and ion density, and the electron energy distribution function is expressed by kinetic theory. The electron current density and reaction constant reasonably set on the boundary are discussed. It is determined that 11 collision reactions play a major role in low pressure and weakly ionized hydrogen discharge. On this basis, the relationship between mobility, electrode spacing, and breakdown voltage is verified. Good agreement is achieved between the simulation curve and Paschen curve.
作者 刘竞业 张明
出处 《Plasma Science and Technology》 SCIE EI CAS CSCD 2012年第8期693-698,共6页 等离子体科学和技术(英文版)
基金 supported by National Natural Science Foundation of China(No.50877003)
关键词 HYDROGEN electrode spacing MOBILITY ionizing COLLISION SIMULATION hydrogen electrode spacing mobility ionizing collision simulation
  • 相关文献

参考文献17

  • 1Gordon K G and Detlef L. 2008, IEEE Transactions on Plasma Science, 36:992.
  • 2Hong Y J, Lee S M and Kim G C, et al. 2008, Plasma Processes and Polymers, 5:583.
  • 3Rafatov I R, Akbar D and Bilikmen S. 2007, Physics Letters A, 367:114.
  • 4Grubert G K, Loffhagen D, Uhrlandt D. 2006, Two- fluid modelling of an abnormal low-pressure glow dis- charge. Frankfurt,COMSOL AB, Comsol Multiphysics Conference 2005: Proceedings and User Presentations CD, http : / / www.comsol.com /papers / 114 7 /.
  • 5Phelps A'V and Petrovic Z L: - "1999, Plasrna Sources Science and Technology, 8:21.
  • 6Yoon J S, Song M Y, Han J M, et al. 2008, J. Phys. Chem.1 Ref. Data, 37:913.
  • 7Tawara H, Itikawa Y, Nishimura H, et al. 1990, J. Phys. Chem. Ref. Data, 3:617.
  • 8Lieberman M A and Lichtenberg A J. 2007, Princi- ples of Plasma Discharges and Materials Processing. Science Press, Beijing, China.
  • 9Maric D, Kutasi K, Malovic G, et al. 2002, The Euro- pean Physical Journal D, 21:73.
  • 10Hagelaar G J M and Pitchford L C. 2005, Plasma Sources Science and Technology, 14:722.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部