Mass parameters for relative and neck collective motions in heavy ion fusion reactions
arXiv:0902.2631 · doi:10.1103/PhysRevC.79.024614 10.1103/PhysRevC.79.049901
Abstract
Mass parameters for the relative and neck motions in fusion reactions of symmetric systems Zr+Zr, Pd+Pd, and Ba+Ba are studied by means of a microscopic transport model. The shape of the nuclear system is determined by an equi-density surface obtained from the density distribution of the system. The relative and neck motions are then studied and the mass parameters for these two motions are deduced. The mass parameter for the relative motion is around the reduced mass when the reaction partners are at the separated configuration and increases with decrease of the distance between two reaction partners after the touching configuration. The mass parameter for the neck motion first decreases slightly up to the touching configuration and then increases with the neck width, and its magnitude is from less than tenth to several times more than the total mass of the system. The mass parameters obtained from the microscopic transport model are larger than the ones obtained from the hydrodynamic model and smaller than those obtained from the linear response function theory. The mass parameters for both motions depend on the reaction systems, but the one for the relative motion depends on the incompressibility of the EoS more obviously than that for neck motion.
19 pages, 10 figures, accepted for publication in Phys.Rev.C
References in corpus (6)
- Constraint Molecular Dynamics approach to Fermionic systems
- An Improved Quantum Molecular Dynamics Model and its Applications to Fusion Reaction near Barrier
- Elliptic flow and system size dependence of transition energies at intermediate energies
- Further Development of the Improved QMD Model and its Applications to Fusion Reaction near Barrier
- Two-Step Model of Fusion for Synthesis of Superheavy Elements
- Search for possible way of producing super-heavy elements-Dynamic study on damped reactions of 244Pu+244Pu,238U and 197Au+197Au
Cited by in corpus (5)
- Non-Gaussian Fluctuation and Non-Markovian Effect in the Nuclear Fusion Process: Langevin Dynamics Emerging from Quantum Molecular Dynamics Simulations
- Dynamical nucleus-nucleus potential at short distances
- Energy-Dependence of Nucleus-Nucleus Potential and Friction Parameter in Fusion Reactions
- Dynamical mechanism of fusion hindrance in heavy ion collisions
- A model for multifragmentation in heavy-ion reactions