Author :
Rahman, Ata Ur ; Kourakis, Ioannis ; Qamar, Anisa
Author_Institution :
Dept. of Phys., Islamia Coll. Peshawar, Peshawar, Pakistan
Abstract :
The linear and nonlinear properties of ion acoustic excitations propagating in warm dense electron-positron-ion plasma are investigated. Electrons and positrons are assumed relativistic and degenerate, following the Fermi-Dirac statistics, whereas the warm ions are described by a set of classical fluid equations. A linear dispersion relation is derived in the linear approximation. Adopting a reductive perturbation method, the Korteweg-de Vries equation is derived, which admits a localized wave solution in the form of a small-amplitude weakly super-acoustic pulse-shaped soliton. The analysis is extended to account for arbitrary amplitude solitary waves, by deriving a pseudoenergy-balance like equation, involving a Sagdeev-type pseudopotential. It is shown that the two approaches agree exactly in the small-amplitude weakly super-acoustic limit. The range of allowed values of the pulse soliton speed (Mach number), wherein solitary waves may exist, is determined. The effects of the key plasma configuration parameters, namely, the electron relativistic degeneracy parameter, the ion (thermal)-to-the electron (Fermi) temperature ratio, and the positron-to-electron density ratio, on the soliton characteristics and existence domain, are studied in detail. Our results aim at elucidating the characteristics of ion acoustic excitations in relativistic degenerate plasmas, e.g., in dense astrophysical objects, where degenerate electrons and positrons may occur.
Keywords :
Korteweg-de Vries equation; Mach number; approximation theory; dispersion relations; plasma density; plasma electrostatic waves; plasma ion acoustic waves; plasma solitons; relativistic plasmas; statistical analysis; Fermi-Dirac statistics; Korteweg-de Vries equation; Mach number; classical fluid equations; electron relativistic degeneracy parameter; electrostatic solitary waves; ion acoustic excitations; linear approximation; linear dispersion relation; localized wave solution; nonlinear properties; plasma configuration parameters; positron-to-electron density ratio; pulse soliton speed; reductive perturbation method; relativistic degenerate electron-positron-ion plasma; small-amplitude weakly super-acoustic limit; small-amplitude weakly super-acoustic pulse-shaped soliton; soliton characteristics; thermal-to-the electron temperature ratio; warm dense electron-positron-ion plasma; Electrostatics; Equations; Mathematical model; Plasma temperature; Positrons; Solitons; Plasma oscillations; plasma waves; plasma waves.;