Elastic properties of nuclear pasta in a fully three-dimensional geometry
arXiv:2209.13310 · doi:10.1016/j.physletb.2023.137769
Abstract
Realistic estimations on the elastic properties of neutron star matter are carried out with a large strain () in the framework of relativistic-mean-field model with Thomas-Fermi approximation, where various crystalline configurations are considered in a fully three-dimensional geometry with reflection symmetry. Our calculation confirms the validity of assuming Coulomb crystals for the droplet phase above neutron drip density, which nonetheless does not work at large densities since the elastic constants are found to be decreasing after reaching their peaks. Similarly, the analytic formulae derived in the incompressible liquid-drop model give excellent description for the rod phase at small densities, which overestimates the elastic constants at larger densities. For slabs, due to the negligence on the variations of their thicknesses, the analytic formulae from liquid-drop model agree qualitatively but not quantitatively with our numerical estimations. By fitting to the numerical results, these analytic formulae are improved by introducing dampening factors. The impacts of nuclear symmetry energy are examined adopting two parameter sets, corresponding to the slope of symmetry energy and 89.39 MeV. Even with the uncertainties caused by the anisotropy in polycrystallines, the elastic properties of neutron star matter obtained with and 89.39 MeV are distinctively different, results in detectable differences in various neutron star activities.
References in corpus (7)
- The Breaking Strain of Neutron Star Crust and Gravitational Waves
- Probing the Equation of State of Nuclear Matter via Neutron Star Asteroseismology
- Elastic properties of phases with nonspherical nuclei in dense matter
- Nuclear pasta structures and symmetry energy
- Neutron star crust in Voigt approximation: general symmetry of the stress-strain tensor and an universal estimate for the effective shear modulus
- Elastic properties of multicomponent crystals in neutron stars and white dwarfs
- Neutron star inner crust: reduction of shear modulus by nuclei finite size effect
Cited by in corpus (5)
- Elasticity of neutron star mantle: improved compressible liquid drop model for cylindrical phases
- Properties and microscopic structures of dense stellar matter in RMF models
- Continuous gravitational waves from thermal mountains on accreting neutron stars: effect of the nuclear pasta phase
- On variational trial functions in the extended Thomas-Fermi method
- Constraining shear modulus of polycrystalline neutron star crust: Hashin-Shtrikman variational approach