Speed of Sound in Hadronic matter using Non-extensive Tsallis Statistics
Abstract
The speed of sound () is studied to understand the hydrodynamical evolution of the matter created in heavy-ion collisions. The quark-gluon plasma (QGP) formed in heavy-ion collisions evolves from an initial QGP to the hadronic phase via a possible mixed phase. Due to the system expansion in a first order phase transition scenario, the speed of sound reduces to zero as the specific heat diverges. We study the speed of sound for systems, which deviate from a thermalized Boltzmann distribution using non-extensive Tsallis statistics. In the present work, we calculate the speed of sound as a function of temperature for different -values for a hadron resonance gas. We observe a similar mass cut-off behaviour in non-extensive case for by including heavier particles, as is observed in the case of a hadron resonance gas following equilibrium statistics. Also, we explicitly present that the temperature where the mass cut-off starts, varies with the -parameter which hints at a relation between the degree of non-equilibrium and the limiting temperature of the system. It is shown that for values of above approximately 1.13 all criticality disappear in the speed of sound, i.e. the decrease in the value of the speed of sound, observed at lower values of , disappears completely.
Keywords
Cite
@article{arxiv.1602.01645,
title = {Speed of Sound in Hadronic matter using Non-extensive Tsallis Statistics},
author = {Arvind Khuntia and Pragati Sahoo and Prakhar Garg and Raghunath Sahoo and Jean Cleymans},
journal= {arXiv preprint arXiv:1602.01645},
year = {2016}
}
Comments
Same as published version in EPJA