Differential Hanbury-Brown-Twiss for an exact hydrodynamic model with rotation
arXiv:1508.01884 · doi:10.1103/PhysRevC.92.024905
Abstract
We study an exact rotating and expanding solution of the fluid dynamical model of heavy ion reactions, that take into account the rate of slowing down of the rotation due to the longitudinal and transverse expansion of the system. The parameters of the model are set on the basis of realistic 3+1D fluid dynamical calculation at TeV energies, where the rotation is enhanced by the build up of the Kelvin Helmholtz Instability in the flow.
4 Pages, 7 figures, to be published in PRC
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- On the Strongly-Interacting Low-Viscosity Matter Created in Relativistic Nuclear Collisions
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Cited by in corpus (6)
- A Rotation/Magnetism Analogy for the Quark-Gluon Plasma
- Inverse Magnetic/Shear Catalysis
- Observables and initial conditions for rotating and expanding fireballs with spheroidal symmetry
- Interferometry for rotating sources
- Field Theories Without a Holographic Dual
- On The Existence of a Holographic Description of the LHC Quark-Gluon Plasmas