Numerical simulation of hypersonic plasma flow field disturbed by pulsed discharge

被引:2
|
作者
Luo, Cheng [1 ]
Liu, Yanming
Zhang, Jia
Yang, Min
机构
[1] Xidian Univ, Key Lab Informat & Struct Efficiency Extreme Envir, Minist Educ China, Xian 710126, Peoples R China
关键词
REENTRY; COMMUNICATION; BLACKOUT;
D O I
10.1063/5.0136579
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
A plasma sheath will be generated around the hypersonic vehicle during reentry, and a large number of electrons in the plasma sheath will seriously affect the communication between the vehicle and the ground station. In order to reduce the electron number density of the hypersonic vehicle plasma sheath, a method of using pulsed discharge active actuation to regulate the plasma sheath is proposed. Based on the air dissociation and ionization model including 11 components and 32 chemical reactions, the reduction effect of pulsed discharge actuation on the electron density of plasma sheath is studied by numerical simulation. A first test is performed in which the pulsed discharge is compared with the plasma jets' experimental data. Then, a second test compared the plasma flow field around the RAMC-II vehicle with the flight test and NASA data. In these two tests, the simulation results are basically consistent with the experimental results. Finally, the effect of pulsed discharge with different energy density on the plasma sheath electron density is studied. The numerical results show that the interaction between the high-pressure aerodynamic actuation generated by the actuator and the plasma sheath produces an obvious shock wave, which blocks electrons from flowing downstream, reduces the velocity and pressure of the flow field behind the shock wave, and, finally, makes the electron density downstream of the actuator attenuate significantly, with the maximum attenuation amplitude of about 35%. Compared with the traditional method, the method proposed in this paper requires less space, load, and source power and has certain engineering feasibility.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] HYPERSONIC BLUFF BODY FLOW FIELD SIMULATION FOR THE GALILEO PROBE BY A FACTORED IMPLICIT NUMERICAL-METHOD
    YANG, JY
    LOMBARD, CK
    BERSHADER, D
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1980, 25 (09): : 1101 - 1101
  • [42] Simulation of the influence high-frequency (2 MHz) capacitive gas discharge and magnetic field on the plasma sheath near a surface in hypersonic gas flow
    I. V. Schweigert
    Journal of Experimental and Theoretical Physics, 2012, 115 : 350 - 355
  • [43] Simulation of the influence high-frequency (2 MHz) capacitive gas discharge and magnetic field on the plasma sheath near a surface in hypersonic gas flow
    Schweigert, I. V.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2012, 115 (02) : 350 - 355
  • [44] Numerical investigation of a chemically reacting and rarefied hypersonic flow field
    Gijare, H.
    Bhagat, A.
    Dongari, N.
    SHOCK WAVES, 2019, 29 (06) : 857 - 871
  • [45] Numerical investigation of a chemically reacting and rarefied hypersonic flow field
    H. Gijare
    A. Bhagat
    N. Dongari
    Shock Waves, 2019, 29 : 857 - 871
  • [46] Glow discharge in external magnetic field in hypersonic flow of rarefied gas
    S. T. Surzhikov
    High Temperature, 2009, 47 : 459 - 471
  • [47] Glow discharge in external magnetic field in hypersonic flow of rarefied gas
    Surzhikov, S. T.
    HIGH TEMPERATURE, 2009, 47 (04) : 459 - 471
  • [48] NUMERICAL SIMULATION OF EXPLODING WIRES DRIVEN BY PULSED CAPACITIVE DISCHARGE
    Chung, Kyoung-Jae
    Lee, Kern
    Hwang, Y. S.
    Kim, Deok-Kyu
    2016 43RD IEEE INTERNATIONAL CONFERENCE ON PLASMA SCIENCE (ICOPS), 2016,
  • [49] Numerical simulation of effect of flow field on discharge characteristics in pressure relief door of nacelle
    Ma S.
    Liu F.
    Ji J.
    Deng Y.
    Zhang L.
    Hangkong Dongli Xuebao/Journal of Aerospace Power, 2023, 38 (10): : 2338 - 2348
  • [50] Hypersonic flow simulation
    Vos, JB
    Leyland, P
    Perrel, F
    COMPUTATIONAL FLUID DYNAMICS, 1996, 59 : 629 - 634