On Fluctuations of Conserved Charges : Lattice Results Versus Hadron Resonance Gas
arXiv:1005.0324 · doi:10.1088/1742-6596/230/1/012012
Abstract
We compare recent lattice results on fluctuations and correlations of strangeness, baryon number and electric charge obtained with p4 improved staggered action with the prediction of hadron resonance gas model. We show that hadron resonance gas can describe these fluctuations reasonably well if the hadron properties are as calculated on the lattice.
4 pages, LaTeX, uses jpconf.cls, to appear in the proceedings of 26th Winter Workshop on Nuclear Dynamics
References in corpus (7)
- The QCD transition temperature: results with physical masses in the continuum limit
- The QCD transition temperature: results with physical masses in the continuum limit II.
- Equation of state and QCD transition at finite temperature
- QCD Equation of State and Hadron Resonance Gas
- Equation of State for physical quark masses
- Lattice QCD at finite temperature : present status
- Flavor symmetry breaking and scaling for improved staggered actions in quenched QCD
Cited by in corpus (11)
- The chiral and deconfinement aspects of the QCD transition
- The QCD equation of state with dynamical quarks
- Is there still any Tc mystery in lattice QCD? Results with physical masses in the continuum limit III
- Lattice QCD at non-zero temperature
- Fluctuations and correlations of conserved charges in an excluded volume hadron resonance gas model
- A Hybrid Model for QCD Deconfining Phase Boundary
- Equation of state at finite baryon density based on lattice QCD
- Baryon Resonances in a Chiral Hadronic Model for the QCD Equation of State
- Conserved Charge Fluctuations in a Chiral Hadronic Model including Hadrons and Quarks
- QCD at non-zero temperature: bulk properties and heavy quarks
- Equation of state at finite net-baryon density using Taylor coefficients up to sixth order