Phenomenological Scaling of Rapidity Dependence for Anisotropic Flows in 25 MeV/nucleon Ca + Ca by Quantum Molecular Dynamics Model
arXiv:0711.0127 · doi:10.1088/0256-307X/24/12/028
Abstract
Anisotropic flows (, , and ) of light fragments up till the mass number 4 as a function of rapidity have been studied for 25 MeV/nucleon Ca + Ca at large impact parameters by Quantum Molecular Dynamics model. A phenomenological scaling behavior of rapidity dependent flow parameters (n = 1, 2, 3 and 4) has been found as a function of mass number plus a constant term, which may arise from the interplay of collective and random motions. In addition, keeps almost independent of rapidity and remains a rough constant of 1/2 for all light fragments.
4 pages, 5 figures
References in corpus (6)
- Partonic flow and -meson production in Au+Au collisions at = 200 GeV
- Momentum spectra, anisotropic flow, and ideal fluids
- Scaling of Anisotropic Flow and Momentum-Space Densities for Light Particles in Intermediate Energy Heavy Ion Collisions
- Surveying the Nucleon-Nucleon Momentum Correlation Function in the Framework of Quantum Molecular Dynamics Model
- Scaling of anisotropy flows in intermediate energy heavy ion collisions
- Scaling of Anisotropic Flows in Intermediate Energy and Ultra-relativistic Heavy Ion Collisions