ﻻ يوجد ملخص باللغة العربية
We study the ion acoustic solitary waves in the four component plasma consisting of clod inertial ions, hot positrons, cold electrons and hot electrons, where the two-temperature electrons follow the Carins-Tsallis distribution. Base on the hydrodynamic equations of the plasma and the Sagdeev pseudo-potential theory, we derive the condition for the solitary waves to exist and the related quantities such as the Sagdeev pseudo-potential, the normalized electrostatic potential, the allowable lower and upper limits of Mach number, and the condition for the solitary waves to be compressive or rarefactive. Properties of the quantities are numerically analyzed for the nonextensive parameters q and nonthermal parameter alpha in the Carins-Tsallis distribution. We show that the parameters q and alpha have significant effects on the above quantities and so the properties of solitary waves in the plasma are generally different from those in the same plasma with a Maxwellian distribution.
We investigate the dispersion relation and Landau damping of ion acoustic waves in the collisionless magnetic-field-free plasma if it is described by the nonextensive q-distributions of Tsallis statistics. We show that the increased numbers of supert
The head-on collision of ion-acoustic solitary waves in a collisionless plasma with cold ions and Boltzmann electrons is studied. It is shown that solitary waves of sufficiently large amplitudes do not retain their identity after a collision. Their a
The Sagdeev pseudo-potential technique and the analytic theory developed by Das et al. [J. Plasma Phys. 78, 565 (2012)] have been used to investigate the dust ion acoustic solitary structures at the acoustic speed in a collisionless unmagnetized dust
Employing the Sagdeev pseudo-potential technique the ion acoustic solitary structures have been investigated in an unmagnetized collisionless plasma consisting of adiabatic warm ions, nonthermal electrons and isothermal positrons. The qualitatively d
The nonlinear theory of two-dimensional ion-acoustic (IA) solitary waves and shocks (SWS) is revisited in a dissipative quantum plasma. The effects of dispersion, caused by the charge separation of electrons and ions and the quantum force associated