Computational study of microdischarges driven by electron beam injection with particle-in-cell/Monte Carlo collision simulations

被引:5
|
作者
Wang, Yu [1 ]
Zhou, Youyou [1 ]
Wu, Hao [2 ]
Zhang, Ya [1 ]
Jiang, Wei [2 ]
Lapenta, Giovanni [3 ]
机构
[1] Wuhan Univ Technol, Dept Phys, Wuhan 430070, Peoples R China
[2] Huazhong Univ Sci & Technol, Sch Phys, Wuhan 430074, Peoples R China
[3] Univ Leuven, Ctr Math Plasma Astrophys, Dept Math, B-3001 Leuven, Belgium
基金
中国国家自然科学基金;
关键词
ENERGY DISTRIBUTION FUNCTION; GENERATED PLASMAS; GLOW-DISCHARGES; FIELD-EMISSION; DENSITY; ARGON; TEMPERATURE; BREAKDOWN; DEVICES; MICROPLASMAS;
D O I
10.1063/5.0087004
中图分类号
O59 [应用物理学];
学科分类号
摘要
Microdischarges (MDs) have attracted increasing attention recently due to their widespread applications. The electron beam injection as an external source can affect the formation and characteristics of microdischarges. Aimed at exploring the kinetic properties of the atmospheric-pressure microdischarges purely driven by electron beam injection without external voltage, the one-dimensional implicit particle-in-cell/Monte Carlo collision model is developed. The monoenergetic electron beam is injected from the left electrode with a current of 0.001-0.05 A and an emission energy of 20-80 eV. It is found that similar to voltage and current-driven MDs, electron beam driven MDs can sustain steady glow discharge with high density (10(21) - 10(22) m(-3)) but has much lower plasma potential (similar to 0.15 - 0.30 V) and electron temperature (< 1 eV) due to the absence of an external field. The electron energy distribution function is composed of a low-energy group with two-temperature distribution and a high-energy group with a discrete distribution. In addition, the injected electron beam current and energy can influence the plasma properties significantly, such as plasma density, electron temperature, plasma potential, etc. The characteristics of ion bombardment can also be modulated by the beam energy and current, resulting in achievement of low energy and high flux. By enlarging the gap between the electrodes, the parameter difference on both sides can be realized. Published under an exclusive license by AIP Publishing.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Electron energy dynamics in a RF discharge with trapezoidal driving voltage: Comparison of experiment and particle-in-cell Monte Carlo collision simulation
    Quandt, E
    Katsch, HM
    Mark, P
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1996, 29 (08) : 2098 - 2103
  • [42] Particle-in-cell/Monte Carlo-simulation of the discharge in helium initiated by a relativistic electron beam in the chamber with a magnetic mirror
    Dubinov, Alexander E.
    Tarakanov, Vladimir P.
    CONTRIBUTIONS TO PLASMA PHYSICS, 2022, 62 (04)
  • [43] Particle-in-cell with Monte Carlo collision modeling of the electron and negative hydrogen ion transport across a localized transverse magnetic field
    Kolev, St.
    Hagelaar, G. J. M.
    Boeuf, J. P.
    PHYSICS OF PLASMAS, 2009, 16 (04)
  • [44] Effect of ion-to-electron mass ratio on the evolution of ion beam driven instability in particle-in-cell simulations
    Hong, Jinhy
    Lee, Ensang
    Min, Kyoungwook
    Parks, George K.
    PHYSICS OF PLASMAS, 2012, 19 (09)
  • [45] Particle-in-cell/Monte Carlo simulation of electron and ion currents to cylindrical Langmuir probe
    Zikan, Petr
    Farkas, Kristian
    Trunec, David
    Jansky, Jaroslav
    Bonaventura, Zdenek
    CONTRIBUTIONS TO PLASMA PHYSICS, 2019, 59 (03) : 314 - 325
  • [46] Leveraging HPC Profiling and Tracing Tools to Understand the Performance of Particle-in-Cell Monte Carlo Simulations
    Williams, Jeremy J.
    Tskhakaya, David
    Costea, Stefan
    Peng, Ivy B.
    Garcia-Gasulla, Marta
    Markidis, Stefano
    EURO-PAR 2023: PARALLEL PROCESSING WORKSHOPS, PT I, EURO-PAR 2023, 2024, 14351 : 123 - 134
  • [47] Ion dynamics in electron beam-plasma interaction: particle-in-cell simulations
    Baumgaertel, K.
    ANNALES GEOPHYSICAE, 2014, 32 (08) : 1025 - 1033
  • [48] Particle-in-cell simulations of electron beam control using an inductive current divider
    Swanekamp, S. B.
    Angus, J. R.
    Cooperstein, G.
    Ottinger, P. F.
    Richardson, A. S.
    Schumer, J. W.
    Weber, B. V.
    PHYSICS OF PLASMAS, 2015, 22 (11)
  • [49] Particle-in-cell simulations of electron energization in laser-driven magnetic reconnection
    Lu, San
    Lu, Quanming
    Guo, Fan
    Sheng, Zhengming
    Wang, Huanyu
    Wang, Shui
    NEW JOURNAL OF PHYSICS, 2016, 18
  • [50] Comparison between particle-in-cell Monte-Carlo and fluid simulations of argon microhollow discharges
    Hong, Y. J.
    Kim, G. J.
    Lee, S. H.
    Yoon, M.
    COMPUTER PHYSICS COMMUNICATIONS, 2007, 177 (1-2) : 128 - 128