Multi-system Bayesian constraints on the transport coefficients of QCD matter
Abstract
We study the properties of the strongly-coupled quark-gluon plasma with a multistage model of heavy ion collisions that combines the TENTo initial condition ansatz, free-streaming, viscous relativistic hydrodynamics, and a relativistic hadronic transport. A model-to-data comparison with Bayesian inference is performed, revisiting assumptions made in previous studies. The role of parameter priors is studied in light of their importance towards the interpretation of results. We emphasize the use of closure tests to perform extensive validation of the analysis workflow before comparison with observations. Our study combines measurements from the Large Hadron Collider and the Relativistic Heavy Ion Collider, achieving a good simultaneous description of a wide range of hadronic observables from both colliders. The selected experimental data provide reasonable constraints on the shear and the bulk viscosities of the quark-gluon plasma at 150-250 MeV, but their constraining power degrades at higher temperatures MeV. Furthermore, these viscosity constraints are found to depend significantly on how viscous corrections are handled in the transition from hydrodynamics to the hadronic transport. Several other model parameters, including the free-streaming time, show similar model sensitivity while the initial condition parameters associated with the TENTo ansatz are quite robust against variations of the particlization prescription. We also report on the sensitivity of individual observables to the various model parameters. Finally, Bayesian model selection is used to quantitatively compare the agreement with measurements for different sets of model assumptions, including different particlization models and different choices for which parameters are allowed to vary between RHIC and LHC energies.
Cite
@article{arxiv.2011.01430,
title = {Multi-system Bayesian constraints on the transport coefficients of QCD matter},
author = {D. Everett and W. Ke and J. -F. Paquet and G. Vujanovic and S. A. Bass and L. Du and C. Gale and M. Heffernan and U. Heinz and D. Liyanage and M. Luzum and A. Majumder and M. McNelis and C. Shen and Y. Xu and A. Angerami and S. Cao and Y. Chen and J. Coleman and L. Cunqueiro and T. Dai and R. Ehlers and H. Elfner and W. Fan and R. J. Fries and F. Garza and Y. He and B. V. Jacak and P. M. Jacobs and S. Jeon and B. Kim and M. Kordell and A. Kumar and S. Mak and J. Mulligan and C. Nattrass and D. Oliinychenko and C. Park and J. H. Putschke and G. Roland and B. Schenke and L. Schwiebert and A. Silva and C. Sirimanna and R. A. Soltz and Y. Tachibana and X. -N. Wang and R. L. Wolpert},
journal= {arXiv preprint arXiv:2011.01430},
year = {2021}
}
Comments
51 pages, including 35 figures and 8 appendices, long companion paper to arXiv:2010.03928. A useful visualization tool to see the effect of varying individual model parameters on physical observables can be found at jetscape.org/sims-widget. Some references and discussion added. This version submitted for publication