Study gliding rotating discharge at atmospheric pressure

Authors

  • D.L. Chernolutsky Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv
  • V.V. Kolgan Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv
  • V.Ya. Chernyak Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv
  • O.A. Nedybaliuk Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv
  • V.V. Iukhymenko Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv
  • V.A. Shapoval Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv
  • E.V. Solomenko Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv
  • M.O. Yakimov Kiev National University оf Taras Shevchenko, Faculty of Radio Physics, Electronics and Computer Systems, Academician Glushkov ave. 4g., 03187, Kyiv

DOI:

https://doi.org/10.18321/

Keywords:

discharge, pressure, atmosphere, plasma, systems

Abstract

This paper considers the possibility of creating a long-life-time plasma generator based on a gliding rotating discharge. Influence of geometrical and dynamic parameters of systems with gliding rotating discharge on the nature of the discharge was investigated. Transverse to the electric field rotating airflow was provided the gliding and rotating discharge.

References

(1). Kalra C.S., Gutsol A.F., Fridman A.A. Gliding arc discharges as a source of intermediate plasma for methane partial oxidation // IEEE Transactions on Plasma Science. 2005. Vol. 33, No. 1.

(2). Czernichowski A. Conversion of waste glycerol into synthesis gas // Proceedings of the 19th International Symposium on Plasma Chemistry (ISPC-19). Bochum, Germany, July 26–31, 2009.

(3). Cormier J.M., Rusu I. Syngas production via methane steam reforming with oxygen: plasma reactors versus chemical reactors // Journal of Physics D: Applied Physics. 2001. Vol. 34. P. 2798–2803.

(4). Cormier J.M., Rusu I., Khacef A. On the use of a magnetic blowout glidarc reactor for the syngas production by steam reforming // Proceedings of the 16th International Symposium on Plasma Chemistry. Taormina, 2003.

(5). Chernyak V. // Proceedings of the 3rd Czech–Russian Seminar on Electrophysical and Thermophysical Processes in Low-Temperature Plasma. Brno, November 16–19, 1999. P. 94–99.

(6). Nedybaliuk O.A., Chernyak V.Ya., Martysh E.V., Lisitchenko T.E. System with plasma injector of hydrocarbons with high viscosity // Proceedings of the 8th International Conference “Electronics and Applied Physics”. Kyiv, Ukraine, October 24–27, 2012. P. 148–149.

Downloads

Published

2014-12-25

How to Cite

Chernolutsky, D., Kolgan, V., Chernyak, V., Nedybaliuk, O., Iukhymenko, V., Shapoval, V., Solomenko, E., & Yakimov, M. (2014). Study gliding rotating discharge at atmospheric pressure. Combustion and Plasma Chemistry, 12(4), 260-268. https://doi.org/10.18321/