Kinetic Alfvén solitary waves in a low-β plasma with regularized kappa-distributed electrons

Author:

Albalawi Wedad1,Khalid Muhammad2ORCID,Tiofack C. G. L.3ORCID,El-Tantawy S. A.45

Affiliation:

1. Department of Mathematical Sciences, College of Science, Princess Nourah bint Abdulrahman University 1 , P.O. Box 84428, Riyadh 11671, Saudi Arabia

2. Department of Physics, Government Post Graduate College Nowshera 2 , Nowshera 24100, Khyber PakhtunKhwa, Pakistan

3. Faculty of Sciences, University of Maroua 3 , P.O. Box 814, Maroua, Cameroon

4. Department of Physics, Faculty of Science, Port Said University 4 , Port Said 42521, Egypt

5. Research Center for Physics (RCP), Department of Physics, Faculty of Science and Arts, Al-Mikhwah, Al-Baha University 5 , Al-Baha 1988, Saudi

Abstract

This study examines the characteristics of small-amplitude kinetic Alfvén waves (KAWs) in a typical magnetoplasma, where both ions and electrons are considered to have a regularized kappa distribution (RKD). The restrictions imposed on the standard Kappa distribution function will be removed by considering the RKD function. The RKD can also be used for kappa areas for spectral index κ < 3/2. We then use the Korteweg–de Vries equation to investigate the KAWs in this model, which we obtained from the reductive perturbation method. It is observed that the equation’s nonlinear and dispersive coefficients are functions of the Kummar functions and the cut-off parameter. It is found that the nonlinear and dispersive coefficients of this equation depend on the Kummar functions and the cut-off parameter. Due to the negativity of the coefficients of the wave equation, only compressive KAWs can exist and propagate in this model. The numerical results demonstrate a positive correlation between the soliton’s profile (amplitude and width) with an increase in the cut-off parameter. Conversely, the superthermality has a negative influence on the soliton profile. The influence of the soliton’s propagation angle on the magnetic field’s direction is investigated. It is found that the solitary wave will not propagate in the ambient when the propagation angle θ becomes 0 or 90. Overall, the results obtained from this research can be used in space and laboratory plasmas with low β that have non-Maxwellian electrons.

Funder

Princess Nourah bint Abdulrahman University

Publisher

AIP Publishing

Subject

General Physics and Astronomy

Reference45 articles.

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