PaperPanorama

Nuclear Theory·nucl-th

Wednesday·November 7, 2018

6 papers2 primary·4 cross-listed

  1. 01

    Microscopic treatment of energy partition in fission

    M. Albertsson · B.G. Carlsson · T. Døssing · P. Möller · J. Randrup · S. Åberg

    The transformation of an atomic nucleus into two excited fission fragments is modeled as a strongly damped evolution of the nuclear shape, until scission occurs at a small critical neck radius, at which point the mass, charge, and shape of each fragment are extracted. The available excitation energy then is divided statistically on the basis of the microscopic level densities. This approach takes account of the important (and energy-dependent) finite-size effects. After the fragments have been fully accelerated and their shapes have relaxed to their equilibrium form, they undergo sequential neutron evaporation. The dependence of the resulting mean neutron multiplicity on the fragment mass, (A), including the dependence on the initial excitation energy of the fissioning compound nucleus, is in good agreement with the observed behavior, as demonstrated here for U(n,f).

    nucl-th6 citations
  2. 02

    Low-lying collective excited states in non-integrable pairing models based on stationary-phase approximation to path integral

    Fang Ni · Nobuo Hinohara · Takashi Nakatsukasa

    For a description of large-amplitude collective motion associated with nuclear pairing, requantization of time-dependent mean-field dynamics is performed using the stationary-phase approximation (SPA) to the path integral. We overcome the difficulty of the SPA, which is known to be applicable to integrable systems only, by developing a requantization approach combining the SPA with the adiabatic self-consistent collective coordinate method (ASCC+SPA). We apply the ASCC+SPA to multi-level pairing models, which are non-integrable systems, to study the nuclear pairing dynamics. The ASCC+SPA gives a reasonable description of low-lying excited states in non-integrable pairing systems.

    nucl-thPRC(2018)·3 citations

Affiliations

first authorsco-authorsvia INSPIRE