Investigation of self-generated magnetic field and dynamics of a pulsed plasma flow

被引:0
|
作者
Tazhen, Aigerim [1 ]
Dosbolayev, Merlan [1 ]
Ramazanov, Tlekkabul [1 ]
机构
[1] Al Farabi Kazakh Natl Univ, Inst Expt & Theoret Phys, Alma Ata 050040, Kazakhstan
关键词
coaxial plasma accelerator; pulsed plasma flow; self magnetic field; electron density; electron temperature; Faraday cup; magnetic probe; FOCUS;
D O I
10.1088/2058-6272/ac5018
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
Due to the growing interest in studying the compression and disruption of the plasma filament in magnetic fusion devices and Z-pinches, this work may be important for new developments in the field of controlled thermonuclear fusion. Recently, on a coaxial plasma accelerator, we managed to obtain the relatively long-lived (similar to 300 mu s) plasma filaments with its self-magnetic field. This was achieved after modification of the experimental setup by using high-capacitive and low-inductive energy storage capacitor banks, as well as electrical cables with low reactive impedance. Furthermore, we were able to avoid the reverse reflection of the plasma flux from the end of the plasma accelerator by installing a special plasma-absorbing target. Thus, these constructive changes of the experimental setup allowed us to investigate the physical properties of the plasma filament by using the comprehensive diagnostics including Rogowski coil, magnetic probes, and Faraday cup. As a result, such important plasma parameters as density of ions and temperature of electrons in plasma flux, time dependent plasma filament's azimuthal magnetic field were measured in discharge gap and at a distance of 23.5 cm from the tip of the cathode. In addition, the current oscillograms and I-V characteristics of the plasma accelerator were obtained. In the experiments, we also observed the charge separation during the acceleration of plasma flow via oscillograms of electron and ion beam currents.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] SELF-GENERATED ROTATION IN A MAGNETIC LEVITATOR
    RICHARDS, AH
    MAGONDU, JG
    LAITHWAITE, RNW
    MURGATROYD, PN
    IEE PROCEEDINGS-A-SCIENCE MEASUREMENT AND TECHNOLOGY, 1981, 128 (06): : 449 - 452
  • [42] SELF-GENERATED TURBULENCE IN MAGNETIC RECONNECTION
    Oishi, Jeffrey S.
    Mac Low, Mordecai-Mark
    Collins, David C.
    Tamura, Moeko
    ASTROPHYSICAL JOURNAL LETTERS, 2015, 806 (01)
  • [43] Ground State Energy of Large Atoms in a Self-Generated Magnetic Field
    László Erdős
    Jan Philip Solovej
    Communications in Mathematical Physics, 2010, 294 : 229 - 249
  • [44] MODIFIED LANGMUIR TURBULENCE EQUATIONS WITH THE SELF-GENERATED MAGNETIC-FIELD
    LI, LH
    PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1993, 5 (06): : 1760 - 1765
  • [45] Self-generated vortex flows in a tokamak magnetic island with a background flow
    Choi, G. J.
    NUCLEAR FUSION, 2023, 63 (06)
  • [46] Ground State Energy of Large Atoms in a Self-Generated Magnetic Field
    Erdoes, Laszlo
    Solovej, Jan Philip
    COMMUNICATIONS IN MATHEMATICAL PHYSICS, 2010, 294 (01) : 229 - 249
  • [47] SELF-GENERATED MAGNETIC-FIELD BY TRANSVERSE PLASMONS IN CELESTIAL BODIES
    LI, XQ
    MA, YH
    ASTRONOMY & ASTROPHYSICS, 1993, 270 (1-2): : 534 - 542
  • [48] Scott Correction for Large Atoms and Molecules in a Self-Generated Magnetic Field
    László Erdős
    Søren Fournais
    Jan Philip Solovej
    Communications in Mathematical Physics, 2012, 312 : 847 - 882
  • [49] Effects of self-generated magnetic field on Rayleigh-Taylor instability
    Nishiguchi, Akio
    1600, Japan Society of Applied Physics (41):
  • [50] Self-generated magnetic field in ablative Rayleigh-Taylor instability
    Zhang, D.
    Li, J.
    Xin, J.
    Yan, R.
    Wan, Z.
    Zhang, H.
    Zheng, J.
    PHYSICS OF PLASMAS, 2022, 29 (07)