Generation of uniform discharge by dielectric barrier discharge device in atmospheric-pressure air

作者: Naoki Osawa , Yoshio Yoshioka , Ryoichi Hanaoka , Yutarou Mochizuki , Yusuke Kobayashi

DOI: 10.1002/EEJ.21253

关键词:

摘要: We found that the generation of a uniform discharge in atmospheric-pressure air was possible frequency range from 32 Hz to 1.1 kHz using alumina as barrier material DBD (Dielectric Barrier Discharge) device. also there is voltage domain for discharge. The becomes wider with increase frequency. If applied slightly higher than upper limit stable discharge, changes nonuniform FD (Filamentary Discharge). In order clarify mechanism we investigated how materials change mode by both photographic observation and analysis electric circuit phenomena. carried out experiments device, combination soda glass alumina. this case, appeared alternately every half cycle. As result, it generated when used acted cathode. From gap current, an APTD (Atmospheric Pressure Townsend characterized electron avalanche. This paper presents experimental results discussions. © 2012 Wiley Periodicals, Inc. Electr Eng Jpn, 180(4): 1–9, 2012; Published online Online Library (wileyonlinelibrary.com). DOI 10.1002/eej.21253

参考文章(10)
Kiyoto Nishijima, Shigemasa Furuie, Yasuji Izawa, Effect of Surface Charge Control on DC Corona Onset Voltages Ieej Transactions on Fundamentals and Materials. ,vol. 127, pp. 735- 740 ,(2007) , 10.1541/IEEJFMS.127.735
Nicolas Gherardi, Gamal Gouda, Eric Gat, André Ricard, François Massines, Transition from glow silent discharge to micro-discharges in nitrogen gas Plasma Sources Science and Technology. ,vol. 9, pp. 340- 346 ,(2000) , 10.1088/0963-0252/9/3/312
N Naudé, J-P Cambronne, N Gherardi, F Massines, Electrical model and analysis of the transition from an atmospheric pressure Townsend discharge to a filamentary discharge Journal of Physics D. ,vol. 38, pp. 530- 538 ,(2005) , 10.1088/0022-3727/38/4/004
Taiji Shoyama, Yoshio Yoshioka, Influence of Gap Distance and Dielectric Surface Temperature on Barrier Discharge Mode The transactions of the Institute of Electrical Engineers of Japan.A. ,vol. 126, pp. 878- 886 ,(2006) , 10.1541/IEEJFMS.126.878
Catalin Borcia, Gabriela Borcia, Nicoleta Dumitrascu, Atmospheric-Pressure Dielectric Barrier Discharge for Surface Processing of Polymer Films and Fibers IEEE Transactions on Plasma Science. ,vol. 37, pp. 941- 945 ,(2009) , 10.1109/TPS.2009.2014637
Yu B Golubovskii, V A Maiorov, J Behnke, J F Behnke, Influence of interaction between charged particles and dielectric surface over a homogeneous barrier discharge in nitrogen Journal of Physics D. ,vol. 35, pp. 751- 761 ,(2002) , 10.1088/0022-3727/35/8/306
N. Gherardi, F. Massines, Mechanisms controlling the transition from glow silent discharge to streamer discharge in nitrogen IEEE Transactions on Plasma Science. ,vol. 29, pp. 536- 544 ,(2001) , 10.1109/27.928953
Masaaki Tanaka, Shigenori Yagi, Norikazu Tabata, Observations of Silent Discharge in Air, Oxygen and Nitrogen by Super High Sensitivity Camera The transactions of the Institute of Electrical Engineers of Japan.A. ,vol. 102, pp. 533- 540 ,(1982) , 10.1541/IEEJFMS1972.102.533
S Kanazawa, M Kogoma, T Moriwaki, S Okazaki, Stable glow plasma at atmospheric pressure Journal of Physics D. ,vol. 21, pp. 838- 840 ,(1988) , 10.1088/0022-3727/21/5/028
Taiji Shoyama, Yoshio Yoshioka, Influence of H 2 O on a Simulation of the Discharge Induced Chemical Reactions in Exhaust Gas Using a Micro Discharge Model Ieej Transactions on Fundamentals and Materials. ,vol. 125, pp. 402- 408 ,(2005) , 10.1541/IEEJFMS.125.402