A Simulation of Breakdown Parameters of High Power Microwave Induced Plasma in Atmospheric Gases

被引:0
|
作者
Ford, Patrick J. [1 ]
Krile, John [1 ]
Krompholz, Hermann [1 ]
Neuber, Andreas [1 ]
机构
[1] Texas Tech Univ, Ctr Pulsed Power & Power Elect, Dept Elect Engn, Lubbock, TX 79409 USA
关键词
Microwave breakdown; low temperature plasma; FDTD;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Surface flashover induced by a High Power Microwave fast rise-time pulse causes a significant drop in transmitted power, along with reflections that can damage the source. Momentum transfer collision rates in the range of 100s of GHz (for pressures exceeding 5 kPa) lead to low plasma conductivity, corresponding to absorption levels of up to 60 % of the incident power. A simulation algorithm was developed using the finite-difference time-domain (FDTD) method in order to model the growth and transport of the electron density near a dielectric surface, and the resulting interaction with the microwave pulse. The time-dependent plasma parameters are governed by empirical and simulated scaling laws for ionization and collision rates, along with diffusion coefficients; the resulting frequency-dependent plasma permittivity is transformed to a discrete algorithm to describe the spatially resolved plasma in the FDTD algorithm. A plasma thickness of up to 2 mm is simulated that compares with side-on ICCD imaging of surface flashover. Breakdown parameters, such as delay times and breakdown electric fields, in nitrogen, air and argon, are compared with experimental data on surface flashover across a polycarbonate window at atmospheric pressures; the simulated results correlate well with measured, and the model exhibits low computational complexity when simulating a pulse on the order of microseconds, making it a good alternative to standard particle-in-cell codes. The source is a S-band magnetron that produces a 2.5 MW peak power, 50 ns rise-time pulse with 3 mu s duration at 2.85 GHz center frequency.
引用
收藏
页码:272 / 275
页数:4
相关论文
共 50 条
  • [1] HIGH-POWER MICROWAVE BREAKDOWN OF GASES
    BOLLEN, WM
    BLACK, WM
    PARKER, RK
    WALTER, WT
    TOBIN, RT
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1980, 25 (08): : 908 - 909
  • [2] Monte Carlo simulation of high power microwave window breakdown at atmospheric conditions
    Krile, John T.
    Neuber, Andreas A.
    Krompholz, Hermann G.
    Gibson, Thomas L.
    APPLIED PHYSICS LETTERS, 2006, 89 (20)
  • [3] Analysis on atmospheric breakdown of high power microwave pulse
    Qu, WY
    Wang, JL
    2003 6TH INTERNATIONAL SYMPOSIUM ON ANTENNAS, PROPAGATION AND EM THEORY, PROCEEDINGS, 2003, : 541 - 544
  • [4] Susceptibility atmospheric breakdown characteristics of repetitive high power microwave pulse
    Yu, Daojie
    He, Kai
    Guo, Baiseng
    Chai, Mengjuan
    Cai, Beibing
    Wei, Jinjin
    Zhou, Dongfang
    2020 IEEE MTT-S INTERNATIONAL CONFERENCE ON NUMERICAL ELECTROMAGNETIC AND MULTIPHYSICS MODELING AND OPTIMIZATION (NEMO 2020), 2020,
  • [5] High power microwave window breakdown under vacuum and atmospheric conditions
    Hemmert, D
    Neuber, AA
    Dickens, JC
    Krompholz, H
    Hatfield, LL
    Kristiansen, M
    INTENSE MICROWAVE PULSES VII, 2000, 4031 : 90 - 98
  • [6] Simulation of the attenuation and refraction of high power microwave breakdown in the atmosphere
    Tao, Tang
    Cheng, Liao
    Dan, Yang
    Jun, Li
    2008 INTERNATIONAL CONFERENCE ON MICROWAVE AND MILLIMETER WAVE TECHNOLOGY PROCEEDINGS, VOLS 1-4, 2008, : 1916 - 1918
  • [7] THE SIMULATION FOR MICROWAVE PLASMA BREAKDOWN PROCESS
    Zhu Dajun Liu Shenggang(High Energy Electronics Research Institute
    Journal of Electronics(China), 1997, (02) : 180 - 185
  • [8] Simulation for microwave plasma breakdown process
    Dianzi Kexue, 2 (258-262):
  • [9] Initiation of microwave-induced electrical breakdown of high-pressure gases
    Song, BM
    Hammer, DA
    Golkowski, C
    Tian, YL
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2003, 31 (01) : 146 - 156
  • [10] Characterization of high microwave power atmospheric pressure plasma torch
    Turkyilmaz, B.
    Mansuroglu, D.
    Uzun-Kaymak, I. U.
    CANADIAN JOURNAL OF PHYSICS, 2018, 96 (07) : 851 - 854