Mini-jet quenching in a concurrent jet+hydro evolution and the non-equilibrium quark-gluon plasma
Daniel Pablos, Mayank Singh, Sangyong Jeon, Charles Gale

TL;DR
This paper introduces a novel concurrent mini-jet and hydrodynamic framework to study their combined effects on the quark-gluon plasma evolution and observable particle flow in heavy-ion collisions.
Contribution
It develops a new integrated mini-jet+hydrodynamic model that accounts for energy injection from mini-jets, modifying the QGP evolution and flow observables.
Findings
Mini-jets significantly influence the hydrodynamical evolution and fluctuations.
Directed flow $v_1$ is highly sensitive to mini-jet production rates.
Adjustments in initial entropy and transport coefficients are necessary for realistic modeling.
Abstract
Mini-jets, created by perturbative hard QCD collisions at moderate energies, can represent a significant portion of the total multiplicity of a heavy-ion collision event. Since their transverse momenta are initially larger than the typical saturation scale describing the bulk of the equilibrating QGP, their typical stopping distances are larger than the usual hydrodynamization time, so they do not in general hydrodynamize at the same pace than the bulk of the collision. Therefore, in general mini-jets cannot be described solely by a unique pre-equilibrium stage that bridges the initial, over-occupied glasma state, with the hydrodynamical evolution. In this work we make use of a new concurrent mini-jet+hydrodynamic framework in which the properties of the hydrodynamically evolving QGP are modified due to the injection of energy and momentum from the mini-jets. We study the system for…
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Taxonomy
TopicsHigh-Energy Particle Collisions Research · Particle physics theoretical and experimental studies · Quantum Chromodynamics and Particle Interactions
