Convective model of a microwave discharge in a gas at atmospheric pressure in the form of a spatially localized plasma

被引:0
|
作者
A. A. Skovoroda
机构
[1] Russian Scientific Center “Kurchatov Institute,
[2] ”,undefined
来源
Journal of Experimental and Theoretical Physics | 1997年 / 85卷
关键词
Vortex; Microwave Radiation; Free Convection; Buoyant Force; Thermal Boundary Layer;
D O I
暂无
中图分类号
学科分类号
摘要
Experiments and a theoretical model consistent with them are presented which show that a stationary microwave discharge in a gas at atmospheric pressure under the action of free convection due to the action of the buoyant force on the heated air can be spatially localized, taking a spheroidal shape. Vortex motion inside the spheroid gives this localized plasma formation some of the properties of a material body which are manifested in a distinct material isolation from the surrounding space, in the formation of a narrow thermal boundary layer and flow separation, and in the formation of secondary vortices in the wake region. The characteristic radius of the stationary localized plasma is governed mainly by the wavelength of the microwave radiation a∼0.137λ. Energy balance is established to a significant degree by convective cooling of the microwave-heated structure.
引用
收藏
页码:474 / 483
页数:9
相关论文
共 50 条
  • [21] Experimental and theoretical studies on gas discharge and plasma oscillation at atmospheric pressure
    Wu Jin-Ze
    Tang Jin-E
    Dong You-Er
    Zhang Guo-Feng
    Wang Yan-Hua
    ACTA PHYSICA SINICA, 2012, 61 (19)
  • [22] Plasma polymerization in an atmospheric pressure dielectric barrier discharge in a flowing gas
    Foest, R
    Schmidt, M
    Behnke, JF
    GASEOUS DIELECTRICS X, 2004, : 167 - 172
  • [23] Gas flow dependence of atmospheric pressure plasma needle discharge characteristics
    Qian, Muyang
    Yang, Congying
    Liu, Sanqiu
    Chen, Xiaochang
    Ni, Gengsong
    Wang, Dezhen
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2016, 55 (04)
  • [24] Fluid mechanical characteristics of microwave discharge jet plasmas at atmospheric gas pressure
    Takamura S.
    Saito S.
    Kushida G.
    Kando M.
    Ohno N.
    IEEJ Transactions on Fundamentals and Materials, 2010, 130 (05) : 493 - 500
  • [25] Spatially resolved spectroscopy of an atmospheric pressure microwave plasma jet used for surface treatment
    Potocnakova, Lucia
    Hnilica, Jaroslav
    Kudrle, Vit
    OPEN CHEMISTRY, 2015, 13 (01): : 541 - 548
  • [26] Plasma parameters of a small microwave discharge at atmospheric pressure obtained by probe diagnostics
    Kiss'ovski, Zh
    Ivanov, A.
    Kolev, St
    17TH INTERNATIONAL SUMMER SCHOOL ON VACUUM, ELECTRON, AND ION TECHNOLOGIES (VEIT 2011), 2012, 356
  • [27] Surface treatment of aluminum sheets by pulsed microwave plasma discharge at atmospheric pressure
    Cho, Soon Cheon
    Hong, Yong Cheol
    Uhm, Han Sup
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS BRIEF COMMUNICATIONS & REVIEW PAPERS, 2007, 46 (6A): : 3583 - 3588
  • [28] Decomposition of volatile organic compounds by a microwave plasma discharge process at atmospheric pressure
    Mok, YS
    Cho, MH
    ACTA PHYSICA SLOVACA, 2004, 54 (01) : 11 - 25
  • [29] Surface treatment of aluminum sheets by pulsed microwave plasma discharge at atmospheric pressure
    Cho, Soon Cheon
    Hong, Yong Cheol
    Uhm, Han Sup
    Japanese Journal of Applied Physics, Part 1: Regular Papers and Short Notes and Review Papers, 2007, 46 (6 A): : 3583 - 3588
  • [30] Influence of gas flow on argon microwave plasma jet at atmospheric pressure
    Iio, Shouichiro
    Yanagisawa, Kosuke
    Uchiyama, Chizuru
    Teshima, Katsuya
    Ezumi, Naomichi
    Ikeda, Toshihiko
    SURFACE & COATINGS TECHNOLOGY, 2011, 206 (06): : 1449 - 1453