Tripolar vortices in inhomogeneous magnetoplasmas in the presence of non-Maxwellian electron distributions

Author:

Alhejaili Weaam1ORCID,Naeem Ismat2ORCID,Masood W.34ORCID,Ismaeel Sherif M. E.56ORCID,El-Tantawy S. A.78ORCID

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, Faculty of Sciences, International Islamic University 2 , Islamabad 44000, Pakistan

3. COMSATS University Islamabad 3 , Islamabad Campus, Park Road, Chak Shahzad, Islamabad 44000, Pakistan and , Shahdara Road, Islamabad 44000, Pakistan

4. National Center for Physics (NCP) 3 , Islamabad Campus, Park Road, Chak Shahzad, Islamabad 44000, Pakistan and , Shahdara Road, Islamabad 44000, Pakistan

5. Department of Physics, College of Science and Humanities in Al-Kharj, Prince Sattam bin Abdulaziz University 4 , Al-Kharj 11942, Saudi Arabia

6. Department of Physics, Faculty of Science, Ain Shams University 5 , Cairo 11566, Egypt

7. Department of Physics, Faculty of Science, Port Said University 6 , Port Said 42521, Egypt

8. Research Center for Physics (RCP), Department of Physics, Faculty of Science and Arts, Al-Mikhwah, Al-Baha University 7 , Al-Baha 1988, Saudi Arabia

Abstract

Nonlinear equations governing the characteristics of tripolar vortices (TPVs) are investigated in an inhomogeneous magnetoplasma having inertialess non-Maxwellian electrons that obey the Cairns, kappa, and (r, q)-distributions. Analytical and numerical solutions of the nonlinear equations are presented for various possible cases. In this regard, the dispersion relation for the drift ion-acoustic waves (IAWs) is derived, and the condition describing the shear flow instability is discussed. It is realized that enhancing the impact of non-Maxwellian electrons in the aforementioned three distributions modifies the size and formation of TPVs. It is found that the increase in the electron concentration in the regions of low-phase space density leads to enhancement in the size of TPVs and the perturbation potential as compared to the effect of increasing concentration of electrons in the regions of high phase space density. The riveting interplay of low and high-energy electrons with spiky distribution and the resulting novel effects on the propagation of vortex structures are also discussed in detail. The present study is useful to understand the (non)linear propagation characteristics of the drift IAWs in space plasmas with special reference to the F-region of the ionosphere and also in laboratory experiments where the nonthermal distribution functions are usually found.

Funder

Princess Nourah Bint Abdulrahman University

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

Reference75 articles.

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5. Low-frequency oscillations in a potassium plasma;Phys. Fluids,1963

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