PaperPanorama

Nuclear Theory·nucl-th

Tuesday·March 14, 2017

8 papers5 primary·3 cross-listed

  1. 01

    Successive variational method of the tensor-optimized antisymmetrized molecular dynamics for central interaction in finite nuclei

    Takayuki Myo · Hiroshi Toki · Kiyomi Ikeda · Hisashi Horiuchi · Tadahiro Suhara

    Tensor-optimized antisymmetrized molecular dynamics (TOAMD) is the basis of the successive variational method for nuclear many-body problem. We apply TOAMD to finite nuclei to be described by the central interaction with strong short-range repulsion, and compare the results with the unitary correlation operator method (UCOM). In TOAMD, the pair-type correlation functions and their multiple products are operated to the AMD wave function. We show the results of TOAMD using the Malfliet-Tjon central potential containing the strong short-range repulsion. Adding the double products of the correlation functions in TOAMD, the binding energies are converged quickly to the exact values of the few-body calculations for s-shell nuclei. This indicates the high efficiency of TOAMD for treating the short-range repulsion in nuclei. We also employ the s-wave configurations of nuclei with the central part of UCOM, which reduces the short-range relative amplitudes of nucleon pair in nuclei to avoid the short-range repulsion. In UCOM, we further perform the superposition of the s-wave configurations with various size parameters, which provides a satisfactory solution of energies close to the exact and TOAMD values.

    nucl-thPRC(2017)·23 citations
  2. 02

    Differential flow correlations in relativistic heavy-ion collisions

    Jing Qian🇨🇳 · Ulrich Heinz🇺🇸 · Ronghua He🇨🇳 · Lei Huo🇨🇳

    A systematic analysis of correlations between different orders of -differential flow is presented, including mode coupling effects in flow vectors, correlations between flow angles (a.k.a. event-plane correlations), and correlations between flow magnitudes, all of which were previously studied with integrated flows. We find that the mode coupling effects among differential flows largely mirror those among the corresponding integrated flows, except at small transverse momenta where mode coupling contributions are small. For the fourth- and fifth-order flow vectors and we argue that the event plane correlations can be understood as the ratio between the mode coupling contributions to these flows and and the flow magnitudes. We also find that for and the linear response contribution scales linearly with the corresponding cumulant-defined eccentricities but not with the standard eccentricities.

    nucl-thnucl-exPRC(2017)·21 citations
  3. 03

    Towers of positive parity excited baryons and their mixing in the large limit

    Cintia Willemyns🇦🇷 · Carlos Schat🇩🇪

    We consider configuration mixing for the nonstrange positive parity excited baryons in the and quark model multiplets contained in the band. Starting from the effective mass operator for these states we show by an explicit calculation that in the large limit they fall into six towers of degenerate states labeled by . We find that the mixing of the quark model states is much simpler than what is naively expected. To leading order in only states carrying the same label can mix, which implies that for the spin-flavor states we started with configuration mixing can be parameterized by just two constants, and .

    nucl-thhep-lathep-phPRD(2017)·3 citations
  4. 04

    Quantum analysis of fluctuations of electromagnetic fields in heavy-ion collisions

    B.G. Zakharov🇷🇺

    We perform quantum calculations of fluctuations of the electromagnetic fields in collisions at RHIC and LHC energies. The analysis is based on the fluctuation-dissipation theorem. We find that in the quantum picture the field fluctuations are very small. They turn out to be much smaller than the predictions of the classical Monte-Carlo simulation with the Woods-Saxon nuclear density.

    nucl-thhep-phPisma Zh.Eksp.Teor.Fiz.(2017)·6 citations
  5. 05

    Adiabatic self-consistent collective path in nuclear fusion reactions

    Kai Wen · Takashi Nakatsukasa

    Collective reaction paths for fusion reactions, O+ Ne and O+O S, are microscopically determined, on the basis of the adiabatic self-consistent collective coordinate (ASCC) method. The collective path is maximally decoupled from other intrinsic degrees of freedom. The reaction paths turn out to deviate from those obtained with standard mean-field calculations with constraints on quadrupole and octupole moments. The potentials and inertial masses defined in the ASCC method are calculated along the reaction paths. The sub-barrier fusion cross sections are calculated for these systems. Inertial mass inside the Coulomb barrier may have a significant influence on the fusion cross section at the deep sub-barrier energy.

    nucl-thPRC(2017)·15 citations

Affiliations

first authorsco-authorsvia INSPIRE