An efficient method for computing the Thouless-Valatin inertia parameters
arXiv:1209.6075 · doi:10.1103/PhysRevC.86.034334
Abstract
Starting from the adiabatic time-dependent Hartree-Fock approximation (ATDHF), we propose an efficient method to calculate the Thouless-Valatin moments of inertia for the nuclear system. The method is based on the rapid convergence of the expansion of the inertia matrix. The accuracy of the proposed method is verified in the rotational case by comparing the results with the exact Thouless-Valatin moments of inertia calculated using the self-consistent cranking model. The proposed method is computationally much more efficient than the full ATDHF calculation, yet it retains a high accuracy of the order of 1%.
16 pages, 3 figures
References in corpus (5)
- Relativistic Continuum Hartree Bogoliubov Theory for Ground State Properties of Exotic Nuclei
- Novel structure for magnetic rotation bands in 60Ni
- Title: Quadrupole collective inertia in nuclear fission: cranking approximation
- Continuum Random Phase Approximation for Relativistic Point Coupling Models
- Current Developments in Nuclear Density Functional Methods
Cited by in corpus (16)
- Microscopic Theory of Nuclear Fission: A Review
- Time-dependent density-functional description of nuclear dynamics
- Symmetry restoration in mean-field approaches
- Deformed relativistic Hartree-Bogoliubov theory in continuum with point coupling functional: examples of even-even Nd isotopes
- A microscopic benchmark-study of triaxiality in low-lying states of 76Kr
- Collective inertia of Nambu-Goldstone mode from linear response theory
- The Low-Energy Quadrupole Mode of Nuclei
- Anharmonicity of multi-octupole-phonon excitations in Pb: analysis with multi-reference covariant density functional theory and subbarrier fusion of O+Pb
- Microscopic derivation of the quadrupole collective Hamiltonian for shape coexistence/mixing dynamics
- Microscopic derivation of the Bohr-Mottelson collective Hamiltonian and its application to quadrupole shape dynamics
- Effect of pairing correlations on nuclear low-energy structure: BCS and general Bogoliubov transformation
- Microscopic description of triaxiality in Ru isotopes with covariant energy density functional theory
- Effective field theory for triaxially deformed nuclei
- Low-lying states in even Gd isotopes studied with five-dimensional collective Hamiltonian based on covariant density functional theory
- Moments of inertia of rare-earth nuclei and the nuclear time-odd mean fields within exact solutions of the adiabatic theory
- Collective inertial masses in nuclear reactions