PaperPanorama

Nuclear Theory·nucl-th

Monday·February 16, 2015

9 papers2 primary·7 cross-listed

  1. 01

    Viscous corrections to anisotropic flow and transverse momentum spectra from transport theory

    Salvatore Plumari🇮🇹 · Giovanni Luca Guardo🇮🇹 · Vincenzo Greco🇮🇹 · Jean-Yves Ollitrault🇫🇷

    Viscous hydrodynamics is commonly used to model the evolution of the matter created in an ultra-relativistic heavy-ion collision. It provides a good description of transverse momentum spectra and anisotropic flow. These observables, however, cannot be consistently derived using viscous hydrodynamics alone, because they depend on the microscopic interactions at freeze-out. We derive the ideal hydrodynamic limit and the first-order viscous correction to anisotropic flow (, and ) and momentum spectrum using a transport calculation. The linear response coefficient to the initial anisotropy, , depends little on in the ideal hydrodynamic limit. The viscous correction to the spectrum depends not only on the differential cross section, but also on the initial momentum distribution. This dependence is not captured by standard second-order viscous hydrodynamics. The viscous correction to anisotropic flow increases with , but this increase is slower than usually assumed in viscous hydrodynamic calculations. In particular, it is too slow to explain the observed maximum of at GeV/c.

    nucl-thhep-phNPA(2015)·27 citations
  2. 02

    Density constrained TDHF

    V.E. Oberacker🇺🇸 · A.S. Umar🇺🇸

    In this manuscript we provide an outline of the numerical methods used in implementing the density constrained time-dependent Hartree-Fock (DC-TDHF) method and provide a few examples of its application to nuclear fusion. In this approach, dynamic microscopic calculations are carried out on a three-dimensional lattice and there are no adjustable parameters, the only input is the Skyrme effective NN interaction. After a review of the DC-TDHF theory and the numerical methods, we present results for heavy-ion potentials , coordinate-dependent mass parameters , and precompound excitation energies for a variety of heavy-ion reactions. Using fusion barrier penetrabilities, we calculate total fusion cross sections for reactions between both stable and neutron-rich nuclei. We also determine capture cross sections for hot fusion reactions leading to the formation of superheavy elements.

    nucl-th2 citations

Affiliations

first authorsco-authorsvia INSPIRE