Published December 2008 | Version v1
Journal article

Hydrodynamic Flow of the Quark-Gluon Plasma and Gauge/Gravity Correspondence

  • 1. M. Smoluchowski Institute of Physics, Jagiellonian University, Reymonta 4, 30-059 Cracow (Poland)
  • 2. Institut de Physique Theorique, URA 2306, Unite de Recherche associee au CNRS, CEA-Saclay, 91191 Gif/Yvette Cedex (France)

Description

The contribution presents a summary of the Gauge/Gravity approach to the study of hydrodynamic flow of the quark-gluon plasma formed in heavy-ion collisions. Considering the ideal case of a supersymmetric Yang-Mills theory for which the AdS/CFT correspondence gives a precise form of the Gauge/Gravity duality, the properties of the strongly coupled expanding plasma are put in one-to-one correspondence with the metric of a 5-dimensional black hole moving away in the 5th dimension and its deformations consistent with the relevant Einstein equations. Several recently studied aspects of this framework are recalled and put in perspective. This paper is a written version of the four lectures given by the authors on that subject. (author)

Availability note (English)

Also available at http://th-www.if.uj.edu.pl/acta/

Additional details

Additional titles

Augmented title (English)
PACS numbers: 11.25.Tq, 12.38.Mh, 25.75.-q, 52.27.Gr

Publishing Information

Journal Title
Acta Physica Polonica. Series B
Journal Volume
B39
Journal Issue
12
Journal Page Range
p. 3183-3204
ISSN
0587-4254

Conference

Title
58 Cracow School of Theoretical Physics 'Aspects of Duality'
Dates
13-22 Jun 2008
Place
Zakopane (Poland)

INIS

Country of Publication
Poland
Country of Input or Organization
Poland
INIS RN
40012215
Subject category
S72: PHYSICS OF ELEMENTARY PARTICLES AND FIELDS;
Resource subtype / Literary indicator
Conference
Descriptors DEI
GAUGE INVARIANCE; HEAVY ION REACTIONS; HYDRODYNAMICS; PARTICLE RAPIDITY; QUANTUM CHROMODYNAMICS; QUARK MATTER; SINGULARITY; YANG-MILLS THEORY
Descriptors DEC
FIELD THEORIES; FLUID MECHANICS; INVARIANCE PRINCIPLES; MATTER; MECHANICS; NUCLEAR REACTIONS; PARTICLE PROPERTIES; QUANTUM FIELD THEORY