Particle spectra and HBT radii for simulated central nuclear collisions of C+C, Al+Al, Cu+Cu, Au+Au, and Pb+Pb from Sqrt(s)=62.4-2760 GeV
M. Habich, J. L. Nagle, and P. Romatschke

TL;DR
This paper uses a hybrid model to simulate various central nuclear collisions, successfully matching experimental pion spectra and HBT radii across multiple energies and systems, and provides publicly available temperature evolution data.
Contribution
It demonstrates that combining pre-equilibrium flow, viscosity, and QCD equation of state resolves the HBT puzzle in heavy-ion collision simulations.
Findings
SONIC model accurately reproduces pion spectra and HBT radii
Simulation results confirm the importance of viscosity and pre-equilibrium flow
Provides publicly available temperature evolution data for future research
Abstract
We study the temperature profile, pion spectra and HBT radii in central symmetric and boost-invariant nuclear collisions using a super hybrid model for heavy-ion collisions (SONIC) combining pre-equilibrium flow with viscous hydrodynamics and late-stage hadronic rescatterings. In particular, we simulate Pb+Pb collisions at Sqrt(s)=2.76 TeV, Au+Au, Cu+Cu, Al+Al, and C+C collisions at Sqrt(s)=200 GeV and Au+Au, Cu+Cu collisions at Sqrt(s)=62.4 GeV. We find that SONIC provides a good match to the pion spectra and HBT radii for all collision systems and energies, confirming earlier work that a combination of pre-equilibrium flow, viscosity and QCD equation of state can resolve the so-called HBT puzzle. For reference, we also show p+p collisions at Sqrt(s)=7 TeV. We make tabulated data for the 2+1 dimensional temperature evolution of all systems publicly available for the use in future jet…
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