arXiv:nucl-th/0006056·v2·Nuclear Theory
Transverse momentum dependence of directed particle flow at 160 AGeV
E.E. Zabrodin (1,2)🇩🇪 · C. Fuchs (1)🇩🇪 · L.V. Bravina (1,2)🇩🇪 · Amand Faessler (1) ((1) Institut fuer Theoretische Physik, Universitaet Tuebingen, Germany; (2) Institute for Nuclear Physics, Moscow State University, Russia)🇩🇪
Abstract
The transverse momentum () dependence of hadron flow at SPS energies is studied. In particular, the nucleon and pion flow in S+S and Pb+Pb collisions at 160 AGeV is investigated. For simulations the microscopic quark-gluon string model (QGSM) is applied. It is found that the directed flow of pions changes sign from a negative slope in the low- region to a positive slope at GeV/c as recently also observed experimentally. The change of the flow behaviour can be explained by early emission times for high- pions. We further found that a substantial amount of high- pions are produced in the very first primary NN collisions at the surface region of the touching nuclei. Thus, at SPS energies high- nucleons seem to be a better probe for the hot and dense early phase of nuclear collisions than high- pions. Both, in the light and in the heavy system the pion directed flow exhibits large negative values when the transverse momentum approaches zero, as also seen experimentally in Pb+Pb collisions. It is found that this effect is caused by nuclear shadowing. The proton flow, in contrary, shows the typical linear increase with rising .
Comments: REVTEX, 20 pages incl. 6 figures, revised and extended version