Physical review. C · 2018 · 23 citations · 40 references
Total EnergyTwo-body Dissipation EffectEngineeringNuclear PhysicsPhysicsNatural SciencesApplied PhysicsNumerical SimulationFusion PowerFusion ReactionControlled Nuclear FusionNuclear ReactionsFriction CoefficientsComputational ChemistryThermodynamicsChemical KineticsFusion NeutronicsMany-body Problem
Friction coefficients for the fusion reaction $^{16}\mathrm{O}+^{16}\mathrm{O}\ensuremath{\rightarrow}^{32}\mathrm{S}$ are extracted based on both the time-dependent Hartree-Fock and the time-dependent density matrix methods. The latter goes beyond the mean-field approximation by taking into account the effect of two-body correlations, but in practical simulations of fusion reactions we find that the total energy is not conserved. We analyze this problem and propose a solution that allows for a clear quantification of dissipative effects in the dynamics. Compared to mean-field simulations, friction coefficients in the density-matrix approach are enhanced by about $20%$. An energy dependence of the dissipative mechanism is also demonstrated, indicating that two-body collisions are more efficient at generating friction at low incident energies.
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Nuclear ground-state properties and self-consistent calculations with the skyrme interaction
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One-body dissipation and the super-viscidity of nuclei
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