Dissipative high-frequency envelope soliton modes in nonthermal plasmas

被引:19
|
作者
Sultana, S. [1 ,2 ]
Schlickeiser, R. [2 ]
Elkamash, I. S. [3 ,4 ]
Kourakis, I [4 ,5 ]
机构
[1] Jahangirnagar Univ, Dept Phys, Dhaka 1342, Bangladesh
[2] Ruhr Univ Bochum, Fak Phys & Astron, D-44780 Bochum, Germany
[3] Mansoura Univ, Fac Sci, Phys Dept, Mansoura 35516, Egypt
[4] Queens Univ Belfast, Dept Phys & Astron, Ctr Plasma Phys, Belfast BT7 1NN, Antrim, North Ireland
[5] Paris Sorbonne Univ Abu Dhabi, POB 38044, Abu Dhabi, U Arab Emirates
关键词
NONLINEAR SCHRODINGER-EQUATION; ELECTRON-ACOUSTIC MODE; 2-COMPONENT ACTIVE SYSTEMS; GINZBURG-LANDAU EQUATION; MADELUNGS FLUID; DUSTY PLASMAS; SOLAR CORONA; WAVES; DISTRIBUTIONS; PULSE;
D O I
10.1103/PhysRevE.98.033207
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
The linear and nonlinear properties of modulated high-frequency (electron-acoustic) electrostatic wave packets are investigated via a fluid-dynamical approach. A three-component plasma is considered, composed of two types of electrons at different temperatures ("cold" and "hot" electrons) evolving against a cold stationary ion background. A weak dissipative effect is assumed, due to electron-neutral collisions. While the cold electrons are treated as an inertial fluid, the hot electrons are assumed to be in a non-Maxwellian state, described by a kappa (kappa) type distribution. The linear characteristics of electron-acoustic waves are analyzed in detail, and a linear dispersion relation is obtained. Weakly damped electrostatic waves are shown to propagate above a wave number k threshold, whose value is related to dissipation (and reduces to zero in its absence). Long-wavelength values (i.e., for k below that threshold) are heavily damped and no propagation occurs. The nonlinear dynamics (modulational self-interaction) of wave packets in the propagating region is modeled via a dissipative nonlinear Schrodinger type equation, derived via a multiscale perturbation technique for the wave envelope, which includes a dissipative term associated with the finite imaginary part of the nonlinearity term. The dynamical and structural characteristics (speed, amplitude, width) of dissipative localized modes representing the amplitude of modulated electron-acoustic wave packets in a collisional plasma are thus investigated for various values of relevant plasma (configuration) parameters, namely the superthermality index kappa, the cold-to-hot electron density ratio, and collisionality (strength). Our analytical predictions are tested by computer simulations. A quasilinear perturbation method for near-integrable systems leads to a theoretical prediction for the wave amplitude decay, which is shown to match our numerical result. The results presented in this paper should be useful in understanding the dynamics of localized electrostatic disturbances in space plasmas, and also in laboratory plasmas, where the combined effect(s) of excess energetic (suprathermal) electrons and (weak) electron-neutral collisions may be relevant.
引用
收藏
页数:14
相关论文
共 50 条
  • [1] Cylindrical dissipative soliton propagation in nonthermal mesospheric plasmas
    El-Shewy, E. K.
    El-Rahman, A. A.
    [J]. PHYSICA SCRIPTA, 2018, 93 (11)
  • [2] HIGH-FREQUENCY ELECTROSTATIC MODES IN NONNEUTRAL PLASMAS
    BOOK, DL
    [J]. PHYSICS OF PLASMAS, 1995, 2 (05) : 1398 - 1403
  • [3] HIGH-FREQUENCY CONDUCTIVITY OF PLASMAS
    AONO, O
    [J]. JOURNAL OF THE PHYSICAL SOCIETY OF JAPAN, 1964, 19 (03) : 376 - &
  • [4] High-frequency core localized modes in neutral beam heated plasmas on TFTR
    Nazikian, R
    Chang, Z
    Fredrickson, ED
    Mazzucato, E
    Batha, SH
    Bell, R
    Budny, R
    Bush, CE
    Cheng, CZ
    Janos, A
    Levinton, F
    Manickam, J
    Mansfield, DK
    Park, HK
    Rewoldt, G
    Sabbagh, S
    Synakowski, EJ
    Tang, W
    Taylor, G
    Zakharov, LE
    [J]. PHYSICS OF PLASMAS, 1996, 3 (02) : 593 - 605
  • [5] Electrical conductivity in high-frequency plasmas
    Lister, GG
    Li, YM
    Godyak, VA
    [J]. JOURNAL OF APPLIED PHYSICS, 1996, 79 (12) : 8993 - 8997
  • [6] HIGH-FREQUENCY NOISE ON ANTENNAS IN PLASMAS
    STENZEL, RL
    [J]. PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1989, 1 (07): : 1369 - 1380
  • [7] HIGH-FREQUENCY BREMSSTRAHLUNG IN NONIDEAL PLASMAS
    VALUEV, AA
    [J]. HIGH TEMPERATURE, 1990, 28 (01) : 28 - 31
  • [8] STRUCTURED DISCHARGES IN HIGH-FREQUENCY PLASMAS
    PENFOLD, AS
    THORNTON, JA
    WARDER, RC
    [J]. CZECHOSLOVAK JOURNAL OF PHYSICS, 1973, B 23 (04) : 431 - 435
  • [9] NONLINEAR HIGH-FREQUENCY CONDUCTIVITY OF PLASMAS
    MATSUDA, K
    MATSUDA, S
    [J]. BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1976, 21 (04): : 648 - 649
  • [10] Dissipative optomechanics in high-frequency nanomechanical resonators
    Primo, Andre G.
    Pinho, Pedro V.
    Benevides, Rodrigo
    Groblacher, Simon
    Wiederhecker, Gustavo S.
    Alegre, Thiago P. Mayer
    [J]. NATURE COMMUNICATIONS, 2023, 14 (01)