Flow harmonics from self-consistent particlization of a viscous fluid
Zack Wolff, Denes Molnar

TL;DR
This paper improves the modeling of quark-gluon plasma freezeout by applying self-consistent shear viscous corrections, leading to more accurate predictions of flow harmonics in heavy-ion collisions at RHIC and LHC energies.
Contribution
It introduces a self-consistent method for shear viscous phase-space corrections in hydrodynamic simulations, enhancing the accuracy of flow harmonic predictions.
Findings
Higher $v_4(p_T)$ and $v_6(p_T)$ for protons compared to pions at high transverse momentum.
The estimated $ ext{eta}/s$ differs by nearly 50\% when using the new corrections versus naive models.
Provided parameterizations for viscous corrections to aid future hydrodynamic calculations.
Abstract
The quantitative extraction of quark-gluon plasma (QGP) properties from heavy-ion data, such as its specific shear viscosity , typically requires comparison to viscous hydrodynamic or "hybrid" hydrodynamics+transport simulations. In either case, one has to convert the fluid to hadrons, yet without additional theory input the conversion is ambiguous for dissipative fluids. Here, shear viscous phase-space corrections calculated using linearized transport theory are applied in Cooper-Frye freezeout to quantify the effects on anisotropic flow coefficients at both RHIC and LHC energies. Expanding upon our previous flow harmonics studies [1,2], we calculate pion and proton , , and . Unlike in Ref. [1], we incorporate a hadron gas that is chemically frozen below a temperature of 175 MeV, and use hypersurfaces from realistic viscous hydrodynamic…
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