PaperPanorama

Nuclear Theory·nucl-th

Wednesday·May 6, 2015

12 papers4 primary·8 cross-listed

  1. 01

    Total Reaction Cross Sections in CEM and MCNP6 at Intermediate Energies

    Leslie M. Kerby · Stepan G. Mashnik

    Accurate total reaction cross section models are important to achieving reliable predictions from spallation and transport codes. The latest version of the Cascade Exciton Model (CEM) as incorporated in the code CEM03.03, and the Monte Carlo N-Particle transport code (MCNP6), both developed at Los Alamos National Laboratory (LANL), each use such cross sections. Having accurate total reaction cross section models in the intermediate energy region (50 MeV to 5 GeV) is very important for different applications, including analysis of space environments, use in medical physics, and accelerator design, to name just a few. The current inverse cross sections used in the preequilibrium and evaporation stages of CEM are based on the Dostrovsky {\it et al.} model, published in 1959. Better cross section models are available now. Implementing better cross section models in CEM and MCNP6 should yield improved predictions for particle spectra and total production cross sections, among other results. Our current results indicate this is, in fact, the case.

    nucl-thNucl.Instrum.Meth.B(2015)·7 citations
  2. 02

    Semi-phenomenological description of the chiral bands in

    A. A. Raduta · C. M. Raduta

    A set of interacting particles are coupled to a phenomenological core described using the generalized coherent state model. Among the particle-core states a finite set which have the property that the angular momenta carried by the proton and neutron quadrupole bosons and the particles, separately, are mutually orthogonal are identified. The magnetic properties of such states are studied. All terms of the model Hamiltonian exhibit chiral symmetry except the spin-spin interaction. There are four bands of the type with two-quasiparticle-core dipole states, exhibiting properties which are specific for magnetic twin bands. An application is presented, for the isotopes Os.

    nucl-thJ.Phys.G(2015)·3 citations
  3. 03

    Asymmetric nuclear matter in a parity doublet model with hidden local symmetry

    Yuichi Motohiro🇯🇵 · Youngman Kim🇰🇷 · Masayasu Harada🇯🇵

    We construct a model to describe dense hadronic matter at zero and finite temperature, based on the parity doublet model of DeTar and Kunihiro, with including the iso-singlet scalar meson as well as and mesons. We show that, by including a six-point interaction of meson, the model reasonably reproduces the properties of the normal nuclear matter with the chiral invariant nucleon mass in the range from to . Furthermore, we study the phase diagram based on the model, which shows that the value of the chiral condensate drops at the liquid-gas phase transition point and at the chiral phase transition point. We also study asymmetric nuclear matter and find that the first order phase transition for the liquid-gas phase transition disappears in asymmetric matter and that the critical density for the chiral phase transition at non-zero density becomes smaller for larger asymmetry.

    nucl-thhep-phPRC(2015)·97 citations
  4. 04

    Can a many-nucleon structure be visible in bremsstrahlung emission during decay?

    Sergei P. Maydanyuk (1 and 2)🇺🇦 · Peng-Ming Zhang (1)🇨🇳 · Li-Ping Zou (1) ((1) Institute of Modern Physics, Chinese Academy of Sciences, Lanzhou, China, (2) Institute for Nuclear Research, National Academy of Sciences of Ukraine, Kiev, Ukraine)🇨🇳

    We analyze if the nucleon structure of the decaying nucleus can be visible in the experimental bremsstrahlung spectra of the emitted photons which accompany such a decay. We develop a new formalism of the bremsstrahlung model taking into account distribution of nucleons in the decaying nuclear system. We conclude the following: (1) After inclusion of the nucleon structure into the model the calculated bremsstrahlung spectrum is changed very slowly for a majority of the decaying nuclei. However, we have observed that visible changes really exist for the nucleus ( MeV, =70 mks) even for the energy of the emitted photons up to 1 MeV. This nucleus is a good candidate for future experimental study of this task. (2) Inclusion of the nucleon structure into the model increases the bremsstrahlung probability of the emitted photons. (3) We find the following tendencies for obtaining the nuclei, which have bremsstrahlung spectra more sensitive to the nucleon structure: (a) direction to nuclei with smaller , (b) direction to nuclei with larger -values.

    nucl-thhep-phnucl-ex5 citations

Affiliations

first authorsco-authorsvia INSPIRE