Microwave discharge on the surface of a dielectric antenna

被引:24
|
作者
Shibkov, VM [1 ]
Ershov, AP [1 ]
Chernikov, VA [1 ]
Shibkova, LV [1 ]
机构
[1] Moscow MV Lomonosov State Univ, Moscow 119992, Russia
基金
俄罗斯基础研究基金会;
关键词
Surface Wave; Plasma Treatment; Surface Friction; Supersonic Flow; Plasma Layer;
D O I
10.1134/1.1901784
中图分类号
O59 [应用物理学];
学科分类号
摘要
A microwave discharge initiated by a surface wave on a dielectric body placed in a supersonic air flow is studied. The discharge is shown to represent a thin plasma layer that uniformly covers the antenna surface. In experiments, the discharge propagation velocity may be as high as 100 km/s, which is several orders of magnitude higher than the velocity of sound in air. The peak pulse power necessary to excite the discharge in a wide range of air pressures (from 10(-3) to 10(3) Torr) is no higher than 100 kW. It is shown that the gas temperature may rise to 1000-2000 K, rapidly increasing (with a rate of approximate to 50 K/mu s) at the early stage of discharge evolution. The discharge of this type may find applications in super- and hypersonic plasma aerodynamics (such as control of the flow near the surface of a body moving in a dense atmosphere, reduction of surface friction, optimization of ignition and combustion conditions for supersonic flows of gaseous fuel, etc.). It may also be used to advantage in development of new-generation plasma sources for micro- and nanoelectronics purposes (plasma treatment of surfaces, etching, and film deposition). (c) 2005 Pleiades Publishing, Inc.
引用
收藏
页码:455 / 461
页数:7
相关论文
共 50 条
  • [31] Mechanisms of microwave surface discharge propagation
    V. M. Shibkov
    S. A. Dvinin
    A. P. Ershov
    L. V. Shibkova
    Technical Physics, 2005, 50 : 462 - 467
  • [32] Application of an antenna excited high pressure microwave discharge to compact discharge lamps
    Kando, M.
    Fukaya, T.
    Ohishi, Y.
    Mizojiri, T.
    Morimoto, Y.
    Shido, M.
    Serita, T.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2008, 41 (14)
  • [33] Mechanisms of microwave surface discharge propagation
    Shibkov, VM
    Dvinin, SA
    Ershov, AP
    Shibkova, LV
    TECHNICAL PHYSICS, 2005, 50 (04) : 462 - 467
  • [34] A microwave dielectric material for microstrip patch antenna substrate
    Liao, Qingwei
    Li, Lingxia
    Zhang, Ping
    Ding, Xiang
    Ren, Xiang
    Zhang, Wei
    JOURNAL OF MATERIALS RESEARCH, 2011, 26 (19) : 2503 - 2510
  • [35] Dual Segment Dielectric Resonator Antenna for Microwave Applications
    Gupta, Anshul
    Gangwar, Ravi Kumar
    2019 4TH INTERNATIONAL CONFERENCE ON COMPUTING, COMMUNICATIONS AND SECURITY (ICCCS), 2019,
  • [36] A microwave dielectric material for microstrip patch antenna substrate
    Qingwei Liao
    Lingxia Li
    Ping Zhang
    Xiang Ding
    Xiang Ren
    Wei Zhang
    Journal of Materials Research, 2011, 26 : 2503 - 2510
  • [37] Surface potential evolution and DC discharge measurement of the microstrip antenna dielectric under electron beam irradiation
    Lian, Zhuoxi
    Yao, Kaiwen
    Wang, Dan
    Zhang, Keyue
    Wang, Rui
    He, Yongning
    VACUUM, 2025, 238
  • [38] Influence of dielectric surface charge on the discharge behavior in a coaxial dielectric-barrier discharge
    Li, SZ
    Uhm, HS
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2004, 45 (02) : 409 - 415
  • [39] Effect of Dielectric Surface Conductivity on Atmospheric Dielectric Barrier Discharge
    Yang, Guoqing
    Li, Anbang
    Fang, Jian
    Wang, Deyi
    Lu, Boxuan
    2013 IEEE CONFERENCE ON ELECTRICAL INSULATION AND DIELECTRIC PHENOMENA (CEIDP), 2013, : 278 - 282
  • [40] ANTENNA PROPERTIES OF GLOW-DISCHARGE DETECTORS OF MICROWAVE RADIATION
    KOPEIKA, NS
    EMANUEL, A
    CHASAN, M
    INTERNATIONAL JOURNAL OF ELECTRONICS, 1978, 44 (04) : 385 - 396