Effect of the Coriolis force on the electrical conductivity of quark matter: A nonrelativistic description

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Dwibedi, Ashutosh, Aung, Cho Win, Dey, Jayanta, Ghosh, Sabyasachi
Format: Preprint
Published: 2023
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913293210222592
author Dwibedi, Ashutosh
Aung, Cho Win
Dey, Jayanta
Ghosh, Sabyasachi
author_facet Dwibedi, Ashutosh
Aung, Cho Win
Dey, Jayanta
Ghosh, Sabyasachi
contents Rotating quarks and hadronic systems, produced in peripheral heavy ion collisions, can experience Coriolis force and other forces due to rotational motion. Considering only the effect of Coriolis force, we have calculated the electrical conductivity for non-relativistic rotating matter using the Relaxation Time Approximation based Boltzmann transport equation. A similarity in mathematical calculations of electrical conductivity at finite rotation and finite magnetic fields is exposed, where an equivalence role between Coriolis force on massive particle's motion and Lorentz force on charged particle's motion is noticed. As the beginning level step, we consider only the Coriolis force in the non-relativistic formalism, which will be extended in the future towards the relativistic case, and to adopt other forces for a more realistic description of the rotating quark and hadronic system.
format Preprint
id arxiv_https___arxiv_org_abs_2305_10183
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Effect of the Coriolis force on the electrical conductivity of quark matter: A nonrelativistic description
Dwibedi, Ashutosh
Aung, Cho Win
Dey, Jayanta
Ghosh, Sabyasachi
Nuclear Theory
Statistical Mechanics
High Energy Physics - Phenomenology
Rotating quarks and hadronic systems, produced in peripheral heavy ion collisions, can experience Coriolis force and other forces due to rotational motion. Considering only the effect of Coriolis force, we have calculated the electrical conductivity for non-relativistic rotating matter using the Relaxation Time Approximation based Boltzmann transport equation. A similarity in mathematical calculations of electrical conductivity at finite rotation and finite magnetic fields is exposed, where an equivalence role between Coriolis force on massive particle's motion and Lorentz force on charged particle's motion is noticed. As the beginning level step, we consider only the Coriolis force in the non-relativistic formalism, which will be extended in the future towards the relativistic case, and to adopt other forces for a more realistic description of the rotating quark and hadronic system.
title Effect of the Coriolis force on the electrical conductivity of quark matter: A nonrelativistic description
topic Nuclear Theory
Statistical Mechanics
High Energy Physics - Phenomenology
url https://arxiv.org/abs/2305.10183