PaperPanorama

Nuclear Theory·nucl-th

Thursday·November 15, 2018

6 papers2 primary·4 cross-listed

  1. 01

    Number of Particles in Fission Fragments

    Marc Verriere · Nicolas Schunck · Toshihiko Kawano

    In current simulations of fission, the number of protons and neutrons in a given fission fragment is almost always obtained by integrating the total density of particles in the sector of space that contains the fragment. Because of the antisymmetry of the many-body wave function of the whole nucleus, this procedure systematically gives noninteger numbers of particles in the fragments. We introduce a novel sampling method to estimate rigorously the probability of finding protons and neutrons in a fission fragment without resorting to projectors, which can sometimes give unwieldy results. When applied on standard Hartree-Fock-Bogoliubov many-body states, we show that our approach reproduces indeed the results of full particle-number projection. We then estimate the charge and mass number dispersion of several scission configurations in Pu with and without pairing correlations included. We show that odd-even effects in the charge probability naturally occur within our approach, which could explain the well-known odd-even staggering of charge distributions. Our method is applicable either in static calculations of scission configurations such as, e.g., in the macroscopic-microscopic approach or energy density functional theory, but also in explicitly time-dependent density functional theory simulations of fission.

    nucl-thPRC(2019)·34 citations
  2. 02

    Structures in the energy distribution of the scission neutrons: finite neutron-number effect

    N.Carjan🇷🇴 · M.Rizea🇷🇴

    The scission neutron kinetic energy spectrum is calculated for in the frame of the dynamical scission model. The bi-dimensional time dependent Schrödinger equation with time dependent potential is used to propagate each neutron wave function during the scission process which is supposed to last sec. At the end, we separate the unbound parts and continue to propagate them as long as possible (in this case sec) in the frozen fragments approximation. At several time intervals, the Fourier transforms of these wave packets are calculated in order to obtain the corresponding momentum distributions which lead to the kinetic energy distributions. The evolution of these distributions in time provides an interesting insight into the separation of each neutron from the fissioning system and asymptotically gives the kinetic energy spectrum of that particular neutron. We group the results in substates with given projection of the angular momentum on the fission axis to study its influence on the spectrum. Finally, the sum over all values is compared with a typical evaporation spectrum as well as with recent precise measurements in the reaction . Structures are present both in the scission-neutron spectrum and in the data.

    nucl-thPRC(2019)·13 citations

Affiliations

first authorsco-authorsvia INSPIRE