Nanosecond repetitively pulsed discharges in air at atmospheric pressure-the spark regime

被引:205
|
作者
Pai, David Z. [1 ]
Lacoste, Deanna A. [1 ]
Laux, Christophe O. [1 ]
机构
[1] Ecole Cent Paris, Lab EM2C, CNRS, UPR 288, F-92295 Chatenay Malabry, France
来源
PLASMA SOURCES SCIENCE & TECHNOLOGY | 2010年 / 19卷 / 06期
关键词
RADIAL DIFFUSION-COEFFICIENT; NITROGEN; BREAKDOWN; PLASMAS; ELECTRONS; GAS; DIAGNOSTICS; PARAMETERS; MECHANISM; MOBILITY;
D O I
10.1088/0963-0252/19/6/065015
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Nanosecond repetitively pulsed (NRP) spark discharges have been studied in atmospheric pressure air preheated to 1000 K. Measurements of spark initiation and stability, plasma dynamics, gas temperature and current-voltage characteristics of the spark regime are presented. Using 10 ns pulses applied repetitively at 30 kHz, we find that 2-400 pulses are required to initiate the spark, depending on the applied voltage. Furthermore, about 30-50 pulses are required for the spark discharge to reach steady state, following initiation. Based on space-and time-resolved optical emission spectroscopy, the spark discharge in steady state is found to ignite homogeneously in the discharge gap, without evidence of an initial streamer. Using measured emission from the N(2) (C-B) 0-0 band, it is found that the gas temperature rises by several thousand Kelvin in the span of about 30 ns following the application of the high-voltage pulse. Current-voltage measurements show that up to 20-40A of conduction current is generated, which corresponds to an electron number density of up to 10(15) cm(3) towards the end of the high-voltage pulse. The discharge dynamics, gas temperature and electron number density are consistent with a streamer-less spark that develops homogeneously through avalanche ionization in volume. This occurs because the pre-ionization electron number density of about 10(11) cm(-3) produced by the high frequency train of pulses is above the critical density for streamer-less discharge development, which is shown to be about 10(8) cm(-3).
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Influence of air flow parameters on nanosecond repetitively pulsed discharges in a pin-annular electrode configuration
    Heitz, Sylvain A.
    Moeck, Jonas P.
    Schuller, Thierry
    Veynante, Denis
    Lacoste, Deanna A.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2016, 49 (15)
  • [42] Active control of thermoacoustic fluctuations by nanosecond repetitively pulsed glow discharges
    Alkhalifa, Ammar M.
    Alsalem, Abdulrahman
    Del Cont-Bernard, Davide
    Lacoste, Deanna A.
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2023, 39 (04) : 5429 - 5437
  • [43] Heat Release in a Nanosecond Repetitively Pulsed Discharge in an Ar-He Mixture at the Atmospheric Pressure
    Zagidullin, M. V.
    Mikheyev, P. A.
    Dvornikov, A. D.
    Torbin, A. P.
    BULLETIN OF THE LEBEDEV PHYSICS INSTITUTE, 2023, 50 (12) : 521 - 527
  • [44] Time evolution of nanosecond runaway discharges in air and helium at atmospheric pressure
    Yatom, S.
    Vekselman, V.
    Krasik, Ya. E.
    PHYSICS OF PLASMAS, 2012, 19 (12)
  • [45] Continuous processing of polymers in repetitively pulsed atmospheric pressure discharges with moving surfaces and gas flow
    Bhoj, Ananth N.
    Kushner, Mark J.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2007, 40 (22) : 6953 - 6968
  • [46] DC and pulsed glow discharges in atmospheric pressure air and nitrogen
    Duten, X
    Packan, D
    Yu, L
    Laux, CO
    Kruger, CH
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2002, 30 (01) : 178 - 179
  • [47] Pulsed electron heating of atmospheric pressure air glow discharges
    Stark, RH
    Merhi, H
    Schoenbach, KH
    PPPS-2001: PULSED POWER PLASMA SCIENCE 2001, VOLS I AND II, DIGEST OF TECHNICAL PAPERS, 2001, : 281 - 284
  • [48] The role of molecular vibration in nanosecond repetitively pulsed discharges and in DBDs in hydrogen plasmas
    Colonna, G.
    D'Ammando, G.
    Pietanza, L. D.
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2016, 25 (05):
  • [49] Nanoparticle formation by laser ablation in air and by spark discharges at atmospheric pressure
    T. E. Itina
    A. Voloshko
    Applied Physics B, 2013, 113 : 473 - 478
  • [50] Nanoparticle formation by laser ablation in air and by spark discharges at atmospheric pressure
    Itina, T. E.
    Voloshko, A.
    APPLIED PHYSICS B-LASERS AND OPTICS, 2013, 113 (03): : 473 - 478