Jet Wake from Linearized Hydrodynamics
Jorge Casalderrey-Solana, Jos\'e Guilherme Milhano, Daniel Pablos,, Krishna Rajagopal, Xiaojun Yao

TL;DR
This paper uses linearized hydrodynamics to model jet-induced wakes in quark-gluon plasma, comparing results with hybrid models and exploring effects of viscosity and transverse flow on particle distributions.
Contribution
It introduces a linearized hydrodynamics approach to better understand jet wakes in QGP and assesses its validity and differences from hybrid models.
Findings
Linearized hydrodynamics performs better in viscous QGP.
Particle spectra are similar in shape between models, but differ in normalization.
Transverse flow makes the transverse momentum spectrum harder.
Abstract
We explore how to improve the hybrid model description of the particles originating from the wake that a jet produced in a heavy ion collision leaves in the droplet of quark-gluon plasma (QGP) through which it propagates, using linearized hydrodynamics on a background Bjorken flow. Jet energy and momentum loss described by the hybrid model become currents sourcing linearized hydrodynamics. By solving the linearized hydrodynamic equations numerically, we investigate the development of the wake in the dynamically evolving droplet of QGP, study the effect of viscosity, scrutinize energy-momentum conservation, and check the validity of the linear approximation. We find that linearized hydrodynamics works better in the viscous case because diffusive modes damp the energy-momentum perturbation produced by the jet. We calculate the distribution of particles produced from the jet wake by using…
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