University of Illinois Chicago
Browse

Relativistic theory of hydrodynamic fluctuations with applications to heavy-ion collisions

Download (476.55 kB)
journal contribution
posted on 2012-12-23, 00:00 authored by J. I. Kapusta, B. Muller, M. Stephanov
We develop the relativistic theory of hydrodynamic fluctuations for application to high-energy heavy-ion collisions. In particular, we investigate their effect on the expanding boost-invariant (Bjorken) solution of the hydrodynamic equations.We discover that correlations over a long rapidity range are induced by the propagation of the sound modes. Due to the expansion, the dispersion law for these modes is nonlinear and attenuated even in the limit of zero viscosity. As a result, there is a nondissipative wake behind the sound front which is generated by any instantaneous pointlike fluctuation. We evaluate the two-particle correlators using the initial conditions and hydrodynamic parameters relevant for heavy-ion collisions at RHIC and LHC. In principle these correlators can be used to obtain information about the viscosities because the magnitudes of the fluctuations are directly proportional to them.

Funding

This work was supported by the US Department of Energy Grants No. DE-FG02-87ER40328 (JIK), No. DE-FG02- 05ER41367 (BM), and No. DE-FG02-01ER41195 (MS).

History

Publisher Statement

This is a copy of an article published in the Physics Review C © 2012 American Physical Society. DOI: 10.1103/PhysRevC.85.054906.

Publisher

American Physical Society

Language

  • en_US

issn

0556-2813

Issue date

2012-05-01

Usage metrics

    Categories

    No categories selected

    Keywords

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC