Pulsational mode stability in complex EiBI-gravitating polarized astroclouds with (r, q)-distributed electrons

Fuente: arXiv
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Main Authors: Ray, Dipankar, Karmakar, Pralay Kumar
Format: Preprint
Published: 2024
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_version_ 1866917713343938560
author Ray, Dipankar
Karmakar, Pralay Kumar
author_facet Ray, Dipankar
Karmakar, Pralay Kumar
contents The pulsational mode of gravitational collapse (PMGC) originating from the combined gravito-electrostatic interaction in complex dust molecular clouds (DMCs) is a canonical mechanism leading to the onset of astronomical structure formation dynamics. A generalized semi-analytic model is formulated to explore the effects of the Eddington-inspired Born-Infeld (EiBI) gravity, non-thermal (r, q)-distributed electrons, and dust-polarization force on the PMGC stability concurrently. The thermal ions are treated thermo-statistically with the Maxwellian distribution law and the non-thermal electrons with the (r, q)-distribution law. The constitutive partially ionized dust grains are modeled in the fluid fabric. A spherical normal mode analysis yields a generalized linear PMGC dispersion relation. Its oscillatory and propagation characteristics are investigated in a reasonable numerical platform. It is found that an increase in the polarization force and positive EiBI parameter significantly enhances the instability, causing the DMC collapse and vice versa. The electron non-thermality spectral parameters play as vital stabilizing factors, and so on. Its reliability and applicability are finally outlined in light of astronomical predictions previously reported in the literature.
format Preprint
id arxiv_https___arxiv_org_abs_2406_18692
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Pulsational mode stability in complex EiBI-gravitating polarized astroclouds with (r, q)-distributed electrons
Ray, Dipankar
Karmakar, Pralay Kumar
Astrophysics of Galaxies
Plasma Physics
The pulsational mode of gravitational collapse (PMGC) originating from the combined gravito-electrostatic interaction in complex dust molecular clouds (DMCs) is a canonical mechanism leading to the onset of astronomical structure formation dynamics. A generalized semi-analytic model is formulated to explore the effects of the Eddington-inspired Born-Infeld (EiBI) gravity, non-thermal (r, q)-distributed electrons, and dust-polarization force on the PMGC stability concurrently. The thermal ions are treated thermo-statistically with the Maxwellian distribution law and the non-thermal electrons with the (r, q)-distribution law. The constitutive partially ionized dust grains are modeled in the fluid fabric. A spherical normal mode analysis yields a generalized linear PMGC dispersion relation. Its oscillatory and propagation characteristics are investigated in a reasonable numerical platform. It is found that an increase in the polarization force and positive EiBI parameter significantly enhances the instability, causing the DMC collapse and vice versa. The electron non-thermality spectral parameters play as vital stabilizing factors, and so on. Its reliability and applicability are finally outlined in light of astronomical predictions previously reported in the literature.
title Pulsational mode stability in complex EiBI-gravitating polarized astroclouds with (r, q)-distributed electrons
topic Astrophysics of Galaxies
Plasma Physics
url https://arxiv.org/abs/2406.18692