1,753 research outputs found
Directed flow, a signal for the phase transition in Relativistic Nuclear Collisions?
The sign change of the slope of the directed flow of baryons has been
predicted as a signal for a first order phase transition within fluid dynamical
calculations. Recently, the directed flow of identified particles has been
measured by the STAR collaboration in the beam energy scan (BES) program. In
this article, we examine the collision energy dependence of directed flow
in fluid dynamical model descriptions of heavy ion collisions for
GeV. The first step is to reproduce the existing
predictions within pure fluid dynamical calculations. As a second step we
investigate the influence of the order of the phase transition on the
anisotropic flow within a state-of-the-art hybrid approach that describes other
global observables reasonably well. We find that, in the hybrid approach, there
seems to be no sensitivity of the directed flow on the equation of state and in
particular on the existence of a first order phase transition. In addition, we
explore more subtle sensitivities like e.g. the Cooper-Frye transition
criterion and discuss how momentum conservation and the definition of the event
plane affects the results. At this point, none of our calculations matches
qualitatively the behavior of the STAR data, the values of the slopes are
always larger than in the data.Comment: 7 pages, 7 figure
Elastic energy loss with respect to the reaction plane in a Monte-Carlo model
We present a computation of nuclear modification factor with respect
to the reaction plane in Au+Au collisions at GeV, based on
a Monte-Carlo model of elastic energy loss of hard partons traversing the bulk
hydrodynamical medium created in ultrarelativistic heavy-ion collisions. We
find the incoherent nature of elastic energy loss incompatible with the
measured data.Comment: 5 pages, 2 figure
Monte Carlo Simulation for Elastic Energy Loss of Hard Partons in a Hydrodynamical Background
We have developed a Monte Carlo simulation describing the
scatterings of perturbatively produced, non-eikonally propagating high-energy
partons with the quarks and gluons of the expanding QCD medium created in
ultrarelativistic heavy ion collisions. The partonic scattering rates are
computed in leading-order perturbative QCD (pQCD), while three different
hydrodynamical scenarios are used to model the strongly interacting medium. We
compare our results and tune the model with the neutral pion suppression
observed in GeV Au+Au collisions at the BNL-RHIC. We find
the incoherent nature of elastic energy loss incompatible with the measured
angular dependence of the suppression. The effects of the initial state density
fluctuations of the bulk medium are found to be small. Also the extrapolation
from RHIC to the LHC is discussed.Comment: 4 pages, 2 figures. Talk given at Quark Matter 2011 conference, 23-28
May 2011, Annecy, Franc
Systematics of parton-medium interaction from RHIC to LHC
Despite a wealth of experimental data for high-P_T processes in heavy-ion
collisions, discriminating between different models of hard parton-medium
interactions has been difficult. A key reason is that the pQCD parton spectrum
at RHIC is falling so steeply that distinguishing even a moderate shift in
parton energy from complete parton absorption is essentially impossible. In
essence, energy loss models are effectively only probed in the vicinity of zero
energy loss and, as a result, at RHIC energies only the pathlength dependence
of energy loss offers some discriminating power. At LHC however, this is no
longer the case: Due to the much flatter shape of the parton p_T spectra
originating from 2.76 AGeV collisions, the available data probe much deeper
into the model dynamics. A simultaneous fit of the nuclear suppression at both
RHIC and LHC energies thus has great potential for discriminating between
various models that yield equally good descriptions of RHIC data alone.Comment: Talk given at Quark Matter 2011, 22-28 May 2011, Annecy, Franc
Particle production and equilibrium properties within a new hadron transport approach for heavy-ion collisions
The microscopic description of heavy-ion reactions at low beam energies is
achieved within hadronic transport approaches. In this article a new approach
SMASH (Simulating Many Accelerated Strongly-interacting Hadrons) is introduced
and applied to study the production of non-strange particles in heavy-ion
reactions at GeV. First, the model is described including
details about the collision criterion, the initial conditions and the resonance
formation and decays. To validate the approach, equilibrium properties such as
detailed balance are presented and the results are compared to experimental
data for elementary cross sections. Finally results for pion and proton
production in C+C and Au+Au collisions is confronted with HADES and FOPI data.
Predictions for particle production in collisions are made.Comment: 30 pages, 30 figures, replaced with published version; only minor
change
Energy loss in a fluctuating hydrodynamical background
Recently it has become apparent that event-by-event fluctuations in the
initial state of hydrodynamical modelling of ultrarelativistic heavy-ion
collisions are crucial in order to understand the full centrality dependence of
the elliptic flow coefficient v_2. In particular, in central collisions the
density fluctuations play a major role in generating the spatial eccentricity
in the initial state. This raises the question to what degree high P_T physics,
in particular leading-parton energy loss, which takes place in the background
of an evolving medium, is sensitive to the presence of the event-by-event
density fluctuations in the background. In this work, we report results for the
effects of fluctuations on the nuclear modification factor R_AA in both central
and noncentral sqrt(s_NN) = 200 GeV Au+Au collisions at RHIC. Two different
types of energy-loss models, a radiative and an elastic, are considered. In
particular, we study the dependence of the results on the assumed spatial size
of the density fluctuations, and discuss the angular modulation of R_AA with
respect to the event plane.Comment: 9 pages, 9 figure
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