arXiv · hep-lat/0512040
The isentropic equation of state of 2-flavor QCD
Abstract
Using Taylor expansions of the pressure obtained previously in studies of 2-flavor QCD at non-zero chemical potential we calculate expansion coefficients for the energy and entropy densities up to ${\cal O}(μ_q^6)$ in the quark chemical potential. We use these series in $μ_q/T$ to determine lines of constant entropy per baryon number ($S/N_B$) that characterize the expansion of dense matter created in heavy ion collisions. In the high temperature regime these lines are found to be well approximated by lines of constant $μ_q/T$. In the low temperature phase, however, the quark chemical potential is found to increase with decreasing temperature. This is in accordance with resonance gas model calculations. Along the lines of constant $S/N_B$ we calculate the energy density and pressure. Within the accuracy of our present analysis we find that the ratio $p/ε$ for $T>T_0$ as well as the softest point of the equation of state, $(p/ε)_{min}\simeq 0.075$, show no significant dependence on $S/N_B$.
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S. Ejiri, F. Karsch, E. Laermann, C. Schmidt. 2005-12-27. The isentropic equation of state of 2-flavor QCD. https://doi.org/10.1103/physrevd.73.054506
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