PaperPanorama

Nuclear Theory·nucl-th

Tuesday·May 10, 2016

15 papers9 primary·6 cross-listed

  1. 01

    Quasiparticle anisotropic hydrodynamics for central collisions

    Mubarak Alqahtani🇺🇸 · Mohammad Nopoush🇺🇸 · Michael Strickland🇺🇸

    We use quasiparticle anisotropic hydrodynamics to study an azimuthally-symmetric boost-invariant quark-gluon plasma including the effects of both shear and bulk viscosities. In quasiparticle anisotropic hydrodynamics, a single finite-temperature quasiparticle mass is introduced and fit to the lattice data in order to implement a realistic equation of state. We compare results obtained using the quasiparticle method with the standard method of imposing the equation of state in anisotropic hydrodynamics and viscous hydrodynamics. Using these three methods, we extract the primordial particle spectra, total number of charged particles, and average transverse momentum for various values of the shear viscosity to entropy density ratio eta/s. We find that the three methods agree well for small shear viscosity to entropy density ratio, eta/s, but differ at large eta/s. We find, in particular, that when using standard viscous hydrodynamics, the bulk-viscous correction can drive the primordial particle spectra negative at large p_T which is clearly unphysical. Such a behavior is not seen in either anisotropic hydrodynamics approach, irrespective of the value of eta/s.

    nucl-thhep-phPRC(2017)·56 citations
  2. 02

    Cutoff regulators in chiral nuclear effective field theory

    Bingwei Long🇨🇳 · Ying Mei🇨🇳

    Three-dimensional cutoff regulators are frequently employed in multi-nucleon calculations, but they violate chiral symmetry and Lorentz invariance. A cutoff regularization scheme is proposed to compensate systematically at subleading orders for these symmetry violations caused by regulator artifacts. This is especially helpful when a soft momentum cutoff has to be used for technical reasons. It is also shown that dimensional regularization can still be used for some Feynman (sub)diagrams while cutoff regulators are used for the rest.

    nucl-thhep-phPRC(2016)·13 citations
  3. 03

    Importance of resonance widths in low-energy scattering of weakly-bound light-mass nuclei

    P. R. Fraser · K. Massen-Hane · K. Amos · I. Bray · L. Canton · R. Fossion · A. S. Kadyrov · S. Karataglidis · J. P. Svenne · D. van der Knijff

    What effect do particle-emitting resonances have on the scattering cross section? What physical considerations are necessary when modelling these resonances? These questions are important when theoretically describing scattering experiments with radioactive ion beams which investigate the frontiers of the table of nuclides, far from stability. Herein, a novel method is developed that describes resonant nuclear scattering from which centroids and widths in the compound nucleus are obtained when one of the interacting bodies has particle unstable resonances. The method gives cross sections without unphysical behavior that is found if simple Lorentzian forms are used to describe resonant target states. The resultant cross sections differ significantly from those obtained when the states in the coupled channel calculations are taken to have zero width, and compound-system resonances are better matched to observed values.

    nucl-thPRC(2016)·7 citations
  4. 04

    Structure of Al from a multi-channel algebraic scattering model based on mirror symmetry

    P. R. Fraser · A. S. Kadyrov · K. Massen-Hane · K. Amos · L. Canton · S. Karataglidis · D. van der Knijff · I. Bray

    The proton-rich nucleus Al has a ground state just 123 keV below the proton drip-line, and as a result comparatively little is known experimentally about its properties, as with many such nuclei. Theoretical investigations have tended to model exclusively the ground and first one to three excited states known. In this paper, we theoretically model most of the known spectrum, and predict what states may as yet be unobserved. We use the multichannel algebraic scattering (MCAS) method to describe states as resonances of a valence proton coupled to a Mg rotor core. Six states with low-excitation energies and defined are matched, and we make the first prediction of the properties of four others and propound the possible existence of several more.

    nucl-thJ.Phys.G(2016)·4 citations
  5. 05

    Extension of the ratio method to low energy

    F. Colomer · P. Capel · F. M. Nunes · R. C. Johnson

    Background: The ratio method has been proposed as a means to remove the reaction model dependence in the study of halo nuclei. Purpose: Originally, it was developed for higher energies but given the potential interest in applying the method at lower energy, in this work we explore its validity at 20 MeV/nucleon. Method: The ratio method takes the ratio of the breakup angular distribution and the summed angular distribution (which includes elastic, inelastic and breakup) and uses this observable to constrain the features of the original halo wave function. In this work we use the Continuum Discretized Coupled Channel method and the Coulomb-corrected Dynamical Eikonal Approximation for the study. Results: We study the reactions of 11Be on 12C, 40Ca and 208Pb at 20 MeV/nucleon. We compare the various theoretical descriptions and explore the dependence of our result on the core-target interaction. Conclusions: Our study demonstrates that the ratio method is valid at these lower beam energies.

    nucl-thnucl-exPRC(2016)·7 citations
  6. 06

    Impacts of the tensor couplings of and mesons and Coulomb exchange terms on super-heavy nuclei and their relation to symmetry energy

    N. Liliani · A. M. Nugraha · J. P. Diningrum · A. Sulaksono

    We have studied the effects of tensor coupling of and meson terms, Coulomb exchange term in local density approximation and various isoscalar-isovector coupling terms of relativistic mean field model on the properties of nuclear matter, finite nuclei, and super-heavy nuclei. We found that for the same fixed value of symmetry energy or its slope the presence of tensor coupling of and meson terms and Coulomb exchange term yields thicker neutron skin thickness of Pb. We also found that the roles of tensor coupling of and meson terms, Coulomb exchange term in local density approximation and various isoscalar-isovector coupling terms on the bulk properties of finite nuclei varies depending on the corresponding nucleus mass. However, on average, tensor coupling terms play a significant role in predicting the bulk properties of finite nuclei in a quite wide mass range especially in binding energies. We also observed that for some particular nuclei, the corresponding experimental data of binding energies is rather less compatible with the presence of Coulomb exchange term in local density approximation and they tend to disfavor the presence of isoscalar-isovector coupling term with too high value. Furthermore, we have found that these terms influence the detail properties of 120 super-heavy nucleus such as binding energies, the magnitude of two nucleon gaps, single particle spectra, neutron densities, neutron skin thicknesses and mean square charge radii. However, the shell closure predictions of Pb and 120 nuclei is not affected by the presence of these terms.

    nucl-thPRC(2016)·7 citations
  7. 07

    Entropy Production and Effective Viscosity in Heavy-Ion Collisions

    Yu. B. Ivanov🇷🇺 · A. A. Soldatov🇷🇺

    Entropy production and an effective viscosity in central Au+Au collisions are estimated in a wide range of incident energies 3.3 GeV 39 GeV. The simulations are performed within a three-fluid model employing three different equations of state with and without deconfinement transition, which are equally good in reproduction of the momentum-integrated elliptic flow of charged particles in the considered energy range. It is found that more that 80\% entropy is prodused during a short early collision stage which lasts 1 fm/c at highest considered energies 20 GeV. The estimated values of the viscosity-to-entropy ratio () are approximately the same in all considered scenarios. At final stages of the system expansion they range from 0.05 at highest considered energies to 0.5 lowest ones. It is found that the ratio decreases with the temperature () rise approximately as and exhibits a rather weak dependence on the net-baryon density.

    nucl-thhep-phEPJA(2016)·22 citations
  8. 08

    Contribution of excited states to stellar weak-interaction rates in odd-A nuclei

    Pedro Sarriguren

    Weak-interaction rates, including beta-decay and electron capture, are studied in several odd-A nuclei in the pf-shell region at various densities and temperatures of astrophysical interest. Special attention is paid to the relative contribution to these rates of thermally populated excited states in the decaying nucleus. The nuclear structure involved in the weak processes is studied within a quasiparticle random-phase approximation with residual interactions in both particle-hole and particle-particle channels on top of a deformed Skyrme Hartree-Fock mean field with pairing correlations. In the range of densities and temperatures considered, it is found that the total rates do not differ much from the rates of the ground state fully populated. In any case, the changes are not larger than the uncertainties due to the nuclear model dependence of the rates.

    nucl-thPRC(2016)·15 citations
  9. 09

    Generalized-Seniority Pattern and Thermal Properties in Even Sn Isotopes

    L. Y. Jia · Chong Qi

    Even tin isotopes of mass number are calculated with realistic interactions in the generalized-seniority approximation of the nuclear shell model. For each nucleus, we compute the lowest ten thousand states ( of each parity) up to around MeV in excitation energy, by allowing as many as four broken pairs. The lowest fifty eigen energies of each parity are compared with the exact results of the large-scale shell-model calculation. The wavefunctions of the mid-shell nuclei show a clear pattern of the stepwise breakup of condensed coherent pairs with increasing excitation energy. We also compute in the canonical ensemble the thermal properties -- level density, entropy, and specific heat -- in relation to the thermal pairing phase transition.

    nucl-thPRC(2016)·18 citations

Affiliations

first authorsco-authorsvia INSPIRE