PaperPanorama

arXiv:1005.4979·v2·Nuclear Experiment

Azimuthal anisotropy: transition from hydrodynamic flow to jet suppression

Roy A. Lacey🇺🇸 · A. Taranenko🇺🇸 · R. Wei🇺🇸 · N. N. Ajitanand🇺🇸 · J. M. Alexander🇺🇸 · J. Jia (Stony Brook University, Chem Dept.)🇺🇸 · R. Pak🇺🇸 · K. Dusling (Bookhaven National Laboratory)🇩🇪 · Dirk H. Rischke (Frankfurt and FIAS)🇺🇸 · D. Teaney (Stony Brook University, Phys. Dept.)🇺🇸

Abstract

Measured 2nd and 4th azimuthal anisotropy coefficients v_{2,4}(N_{part}), p_T) are scaled with the initial eccentricity \varepsilon_{2,4}(N_{part}) of the collision zone and studied as a function of the number of participants N_{part} and the transverse momenta p_T. Scaling violations are observed for GeV/c, consistent with a dependence of viscous corrections and a linear increase of the relaxation time with . These empirical viscous corrections to flow and the thermal distribution function at freeze-out constrain estimates of the specific viscosity and the freeze-out temperature for two different models for the initial collision geometry. The apparent viscous corrections exhibit a sharp maximum for GeV/c, suggesting a breakdown of the hydrodynamic ansatz and the onset of a change from flow-driven to suppression-driven anisotropy.

Comments: 5 pages, 4 figs; submitted for publication

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