PaperPanorama

Nuclear Theory·nucl-th

Friday·March 27, 2020

9 papers3 primary·6 cross-listed

  1. 01

    Description of the asymmetric to symmetric fission transition in the neutron-deficient Thoriums -- Role of the tensor force

    Remi Bernard🇦🇺 · Nathalie Pillet🇫🇷 · Luis Robledo🇪🇸 · Marta Anguiano🇪🇸

    In the present study, we have investigated the impact of the tensor force on fission paths, in particular the symmetric and asymmetric barriers in 230 Th, 226 Th, 222 Th and 216 Th isotopes which display an asymmetric to symmetric fission transition. This analysis has been performed within the HFB approach with (Q 20 ,Q 30 ,Q 40 ) as collective variable constraints, using the D1ST2a Gogny+tensor term interaction and comparing to the standard D1S Gogny interaction results. The effects from the tensor term on the potential energy surface landscape, and especially on barrier heights and its topology by opening a new valley in agreement with experimental data, are found to be crucial in the description of exotic actinide fission. We conclude that a tensor term should be integrated to the long range part of the effective interaction for a better description of the fission.

    nucl-thPRC(2020)·19 citations
  2. 02

    Positronium on the light front

    Kaiyu Fu🇨🇳 · Hengfei Zhao🇨🇳 · Xingbo Zhao🇨🇳 · James P. Vary🇺🇸

    Basis Light-front Quantization (BLFQ) is a newly developed nonperturbative approach, aiming at solving relativistic bound systems based on the Hamiltonian formalism of light-front dynamics. In this work, we introduce its application to the positronium system at strong coupling, , with a dynamical photon mediating the interaction between the positron and the electron. Nonperturbative mass renormalization is needed to cancel the fermion self-energy divergence. Here, we present the resulting mass spectrum, light-front wave functions (LFWFs), and the photon distribution inside positronium.

    nucl-thHADRON 2019, 550-554·1 citation
  3. 03

    Simulation of the traveling wave burning on epithermal neutrons on the year time scale

    V.D. Rusov · V.A. Tarasov · M.V. Eingorn · S.A. Chernezhenko · A.A. Kakaev · V.P. Smolyar · S.I. Kosenko · T.N. Zelentsova

    We present the newly obtained results of two computer simulations of the epithermal neutron-nuclear burning in natural uranium. Each of them modeled the period of six months of the traveling wave reactor (TWR) operation -- for two different flux densities of an external neutron source. The simulation results confirm the existence of a nuclear burning wave at longer time scales, and reveal the dependence of the wave burning modes on the parameters of an external neutron source.

    nucl-th0 citations

Affiliations

first authorsco-authorsvia INSPIRE