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Autori principali: Jha, Agam K., Srivastava, Aviral
Natura: Preprint
Pubblicazione: 2024
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Accesso online:https://arxiv.org/abs/2406.14172
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author Jha, Agam K.
Srivastava, Aviral
author_facet Jha, Agam K.
Srivastava, Aviral
contents Pre-existing density of states for a Quark-Gluon Phase, based on Thomas-Fermi and Bethe mode, is expanded by incorporation of new variables. Results from recent study indicate that perturbations in the form of a finite non-zero chemical potential T, B, dynamic thermal masses M and of course Temperature T are indeed vital to fully comprehend the formation and dynamics of QGP. Simulations depict an overall increase in the stability of QGP in the paradigm of the statistical model. On the top of Free Energy, Entropy and heat capacity are calculated for the phase transition. The overall qualitative behavior, of entropy or Heat Capacity determines the order of phase transition of the QGP. Investigation of order of phase transition is carried out in this study through Monte-Carlo based differential element, which ensures the inclusion of the randomness of the collisions at the particle colliders.
format Preprint
id arxiv_https___arxiv_org_abs_2406_14172
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Dynamics of Phase Transition in Quark-Gluon Plasma Droplet Formation under Magnetic Field
Jha, Agam K.
Srivastava, Aviral
High Energy Physics - Phenomenology
Nuclear Theory
Pre-existing density of states for a Quark-Gluon Phase, based on Thomas-Fermi and Bethe mode, is expanded by incorporation of new variables. Results from recent study indicate that perturbations in the form of a finite non-zero chemical potential T, B, dynamic thermal masses M and of course Temperature T are indeed vital to fully comprehend the formation and dynamics of QGP. Simulations depict an overall increase in the stability of QGP in the paradigm of the statistical model. On the top of Free Energy, Entropy and heat capacity are calculated for the phase transition. The overall qualitative behavior, of entropy or Heat Capacity determines the order of phase transition of the QGP. Investigation of order of phase transition is carried out in this study through Monte-Carlo based differential element, which ensures the inclusion of the randomness of the collisions at the particle colliders.
title Dynamics of Phase Transition in Quark-Gluon Plasma Droplet Formation under Magnetic Field
topic High Energy Physics - Phenomenology
Nuclear Theory
url https://arxiv.org/abs/2406.14172