Transverse momentum and rapidity dependence of collective flow harmonics of protons and deuterons in Au + Au reactions at 1.23 AGeV

2019 ◽  
Vol 340 (9-10) ◽  
pp. 996-1000 ◽  
Author(s):  
Paula Hillmann ◽  
Jan Steinheimer ◽  
Tom Reichert ◽  
Vincent Gaebel ◽  
Marcus Bleicher ◽  
...  
1987 ◽  
Vol 35 (2) ◽  
pp. 854-854
Author(s):  
L. P. Csernai ◽  
P. Freier ◽  
J. Mevissen ◽  
H. Nguyen ◽  
L. Waters

2018 ◽  
Vol 172 ◽  
pp. 05005
Author(s):  
Sandra S. Padula

The quark-gluon plasma created in high energy collisions of large nuclei exhibits strong anisotropic collective behavior as a nearly perfect fluid, flowing with little frictional resistance or viscosity. It has been investigated extensively over the past years employing two or more particle correlations. An overview of collective flow and particle correlation measurements at CMS as a function of transverse momentum, pseudorapidity, event multiplicity, for both charged hadrons or identified particles will be presented. These results are compared among pp, pPb and PbPb systems and several aspects of their intriguing similarities are discussed.


2008 ◽  
Vol 791 (1-2) ◽  
pp. 1-19 ◽  
Author(s):  
Giuseppe Bozzi ◽  
Stefano Catani ◽  
Daniel de Florian ◽  
Massimiliano Grazzini

2015 ◽  
Vol 2015 ◽  
pp. 1-7 ◽  
Author(s):  
Saeed Uddin ◽  
Inam-ul Bashir ◽  
Riyaz Ahmed Bhat

The transverse momentum spectra of several types of hadrons,p,p̅,K+,K-,Ks0,Λ,Ω,Ω̅,Ξ-, andΞ̅produced in most central Pb-Pb collisions at LHC energysNN=2.76 TeV have been studied at midrapidity (|y|<0.5) using an earlier proposed unified statistical thermal freeze-out model. The calculated results are found to be in good agreement with the experimental data measured by the ALICE experiment at LHC. The model calculation fits provide the thermal freeze-out conditions in terms of the temperature and collective flow effect parameters for different particle species. Interestingly the model parameter fits to the experimental data reveal stronger collective flow in the system and lesser freeze-out temperatures of the different particle species as compared to Au-Au collisions at RHIC. The strong increase of the collective flow appears to be a consequence of the increasing particle density at LHC. The model used incorporates a longitudinal as well as transverse hydrodynamic flow. The chemical potential has been assumed to be nearly equal to zero for the bulk of the matter owing to high degree of nuclear transparency effect at such collision energies. The contributions from heavier decay resonances are also taken into account.


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