Flow in conical shock waves: A signal for the deconfinement transition?
Creators
- 1. Institut fuer Theoretische Physik der J. W. Goethe Universitaet, Postfach 111932, D-6000 Frankfurt am Main 11 (Federal Republic of Germany)
Description
We investigate the hydrodynamical flow of nuclear matter in a conical-shock-wave scenario of a central, asymmetric heavy-ion collision. This work is motivated by a suggestion of Chapline and Granik that the creation of a deconfined phase of quarks and gluons behind the shock will appreciably increase the deflection angle of the matter flow. We employ several hadron matter equations of state recently suggested to solve the conical-shock-wave problem and compare the results with a calculation using the bag equation of state. We find that large differences in the deflection angle obtained in the rest frame of the shock vanish in the laboratory system. However, a signature for the deconfinement transition may be the transverse momentum of the matter flow, which is up to a factor of 2 larger for the quark-gluon plasma. Thus, an excitation function of the mean transverse momentum would show an increase at a certain bombarding energy, signaling the onset of the deconfinement transition
Additional details
Publishing Information
- Journal Title
- Physical Review, D
- Journal Volume
- 42
- Journal Issue
- 7
- Series
- Phys. Rev., D.
- Journal Page Range
- 2283-2292
- ISSN
- 0556-2821
- CODEN
- PRVDA
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 22024932
- Subject category
- S73: NUCLEAR PHYSICS AND RADIATION PHYSICS;
- Descriptors DEI
- EQUATIONS OF STATE; EXCITATION FUNCTIONS; GLUONS; HEAVY ION REACTIONS; HYDRODYNAMIC MODEL; NUCLEAR MATTER; QUANTUM CHROMODYNAMICS; QUARK MATTER; QUARKS; SHOCK WAVES; TRANSVERSE MOMENTUM
- Descriptors DEC
- BOSONS; ELEMENTARY PARTICLES; EQUATIONS; FERMIONS; FIELD THEORIES; LINEAR MOMENTUM; MATHEMATICAL MODELS; MATTER; NUCLEAR REACTIONS; PARTICLE MODELS; POSTULATED PARTICLES; QUANTUM FIELD THEORY; STATISTICAL MODELS; THERMODYNAMIC MODEL