Modeling Quark Gluon Plasma Using CHIMERA
arXiv:1109.4185 · doi:10.1088/1742-6596/316/1/012030
Abstract
We attempt to model Quark Gluon Plasma (QGP) evolution from the initial Heavy Ion collision to the final hadronic gas state by combining the Glauber model initial state conditions with eccentricity fluctuations, pre-equilibrium flow, UVH2+1 viscous hydrodynamics with lattice QCD Equation of State (EoS), a modified Cooper-Frye freeze-out and the UrQMD hadronic cascade. We then evaluate the model parameters using a comprehensive analytical framework which together with the described model we call CHIMERA. Within our framework, the initial state parameters, such as the initial temperature (T), presence or absence of initial flow, viscosity over entropy density (/s) and different Equations of State (EoS), are varied and then compared simultaneously to several experimental data observables: HBT radii, particle spectra and particle flow. /nds values from comparison to the experimental data for each set of initial parameters will then used to find the optimal description of the QGP with parameters that are difficult to obtain experimentally, but are crucial to understanding of the matter produced.
Proceedings for the 27th Winter Workshop on Nuclear Dynamics (2011) in Winter Park, CO
References in corpus (4)
- Equation of state and QCD transition at finite temperature
- QCD Equation of State and Hadron Resonance Gas
- Quantitative Constraints on the Transport Properties of Hot Partonic Matter from Semi-Inclusive Single High Transverse Momentum Pion Suppression in Au+Au collisions at sqrt(s_NN) = 200 GeV
- Initial Conditions and Global Event Properties from Color Glass Condensate