Simulations by transport codes are indispensable to extract valuable physical information from heavy-ion collisions. In order to understand the origins of discrepancies among different widely used transport codes, we compare 15 such codes under controlled conditions of a system confined to a box with periodic boundary, initialized with Fermi-Dirac distributions at saturation density and temperatures of either 0 or 5 MeV. In such calculations, one is able to check separately the different ingredients of a transport code. In this second publication of the code evaluation project, we only consider the two-body collision term; i.e., we perform cascade calculations. When the Pauli blocking is artificially suppressed, the collision rates are foun...
Numerical solutions of the Boltzmann transport equation (BTE) present a framework for modeling non-e...
International audienceWe compare the microscopic transport models UrQMD, PHSD, PHQMD, and SMASH to m...
The simulation of heavy ion collisions in the Fermi energy region is a challenge for the theoretical...
26 pages, 13 figures, a manuscript on the heavy-ion collision part of transport code comparison proj...
We compare ten transport codes for a system confined in a box, aiming at improved handling of the pr...
International audienceTransport models are the main method to obtain physics information on the nucl...
Transport models are the main method to obtain physics information from low to relativistic-energy h...
Transport simulations are an important and successful tool to extract information on the equation of...
A new transport code "DaeJeon Boltzmann-Uehling-Uhlenbeck" (DJBUU) has been developed and ...
Within the transport model evaluation project (TMEP) of simulations for heavy-ion collisions, the me...
International audienceWithin the Transport Model Evaluation Project (TMEP), we present a detailed st...
We compare the microscopic transport models UrQMD, PHSD, PHQMD, and SMASH to make predictions for th...
We present results of microscopic calculations of the drift and diffusion coefficients in deep inela...
Numerical solutions of the Boltzmann transport equation (BTE) present a framework for modeling non-e...
International audienceWe compare the microscopic transport models UrQMD, PHSD, PHQMD, and SMASH to m...
The simulation of heavy ion collisions in the Fermi energy region is a challenge for the theoretical...
26 pages, 13 figures, a manuscript on the heavy-ion collision part of transport code comparison proj...
We compare ten transport codes for a system confined in a box, aiming at improved handling of the pr...
International audienceTransport models are the main method to obtain physics information on the nucl...
Transport models are the main method to obtain physics information from low to relativistic-energy h...
Transport simulations are an important and successful tool to extract information on the equation of...
A new transport code "DaeJeon Boltzmann-Uehling-Uhlenbeck" (DJBUU) has been developed and ...
Within the transport model evaluation project (TMEP) of simulations for heavy-ion collisions, the me...
International audienceWithin the Transport Model Evaluation Project (TMEP), we present a detailed st...
We compare the microscopic transport models UrQMD, PHSD, PHQMD, and SMASH to make predictions for th...
We present results of microscopic calculations of the drift and diffusion coefficients in deep inela...
Numerical solutions of the Boltzmann transport equation (BTE) present a framework for modeling non-e...
International audienceWe compare the microscopic transport models UrQMD, PHSD, PHQMD, and SMASH to m...
The simulation of heavy ion collisions in the Fermi energy region is a challenge for the theoretical...