Relativistic viscous hydrodynamics for heavy-ion collisions with ECHO-QGP

被引:0
|
作者
L. Del Zanna
V. Chandra
G. Inghirami
V. Rolando
A. Beraudo
A. De Pace
G. Pagliara
A. Drago
F. Becattini
机构
[1] Università di Firenze,Dipartimento di Fisica e Astronomia
[2] INFN,Sezione di Firenze
[3] INAF,Osservatorio Astrofisico di Arcetri
[4] Università di Ferrara,Dipartimento di Fisica e Scienze della Terra
[5] INFN,Sezione di Ferrara
[6] Theory Unit,Physics Department
[7] CERN,Sezione di Torino
[8] INFN,undefined
[9] Frankfurt Institute for Advanced Studies,undefined
来源
The European Physical Journal C | 2013年 / 73卷
关键词
Relativistic fluid dynamics; Relativistic heavy-ion collisions; Quark-gluon plasma; Methods: numerical;
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摘要
We present ECHO-QGP, a numerical code for (3+1)-dimensional relativistic viscous hydrodynamics designed for the modeling of the space-time evolution of the matter created in high-energy nuclear collisions. The code has been built on top of the Eulerian Conservative High-Order astrophysical code for general relativistic magneto-hydrodynamics (Del Zanna et al. in Astron. Astrophys. 473:11, 2007] and here it has been upgraded to handle the physics of the Quark–Gluon Plasma. ECHO-QGP features second-order treatment of causal relativistic viscosity effects both in Minkowskian and in Bjorken coordinates; partial or complete chemical equilibrium of hadronic species before kinetic freeze-out; initial conditions based on the Glauber model, including a Monte-Carlo routine for event-by-event fluctuating initial conditions; a freeze-out procedure based on the Cooper–Frye prescription. The code is extensively validated against several test problems and results always appear accurate, as guaranteed by the combination of the conservative (shock-capturing) approach and the high-order methods employed. ECHO-QGP can be extended to include evolution of the electromagnetic fields coupled to the plasma.
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