Accuracy of one-dimensional approximation in neutron star quasi-normal modes
arXiv:2205.10523 · doi:10.1140/epjc/s10052-022-10439-1
Abstract
Since the eigenfrequency of gravitational waves from cold neutron stars becomes a complex number, where the real and imaginary parts respectively correspond to an oscillation frequency and damping rate, one has to somehow solve the eigenvalue problem concerning the eigenvalue in two-dimensional parameter space. To avoid this bother, one sometimes adopts an approximation, where the eigenvalue is in one-dimensional parameter space. In this study, first, we show the accuracy of the zero-damping approximation, which is one of the one-dimensional approximations, for the fundamental and 1st pressure modes. But, this approximation is not applicable to the spacetime mode, because the damping rate of the spacetime mode is generally comparable to the oscillation frequency. Nevertheless, we find the empirical relation for the ratio of the imaginary part to the real part of the eigenfrequency, which is expressed as a function of the steller compactness almost independently of the adopted equations of state for neutron star matter. Adopting this empirical relation, one can express the eigenfrequency in terms of just the real part, i.e., the problem to solve becomes an eigenvalue problem with a one-dimensional eigenvalue. Then, we find that the frequencies are estimated with good accuracy even with such approximations even for the 1st spacetime mode.
accepted in EPJC
References in corpus (26)
- Shapiro delay measurement of a two solar mass neutron star
- A Massive Pulsar in a Compact Relativistic Binary
- PSR J0030+0451 Mass and Radius from NICER Data and Implications for the Properties of Neutron Star Matter
- A NICER View of PSR J0030+0451: Millisecond Pulsar Parameter Estimation
- A NICER View of the Massive Pulsar PSR J0740+6620 Informed by Radio Timing and XMM-Newton Spectroscopy
- Towards Understanding Astrophysical Effects of Nuclear Symmetry Energy
- Signatures of hadron-quark mixed phase in gravitational waves
- Probing the Equation of State of Nuclear Matter via Neutron Star Asteroseismology
- Gravitational wave asteroseismology with protoneutron stars
- Supernova Seismology: Gravitational Wave Signatures of Rapidly Rotating Core Collapse
- Probing mass-radius relation of protoneutron stars from gravitational-wave asteroseismology
- Dependence of outer boundary condition on protoneutron star asteroseismology with gravitational-wave signatures
- Universal relation for supernova gravitational waves
- On the maximum mass limit of neutron stars in scalar-tensor gravity
- Probing nuclear bubble structure via neutron star asteroseismology
- Accuracy of relativistic Cowling approximation in protoneutron star asteroseismology
- Dimension dependence of numerical simulations on gravitational waves from protoneutron stars
- Avoided crossing in gravitational wave spectra from protoneutron star
- Neutron star asteroseismology and nuclear saturation parameter
- Determination of properties of protoneutron stars toward black hole formation via gravitational wave observations
- The Radius of PSR J0740+6620 from NICER and XMM-Newton Data
- Gravitational wave asteroseismology for low-mass neutron stars
- Estimating the nuclear saturation parameter via low-mass neutron star asteroseismology
- Gravitational wave asteroseismology on cooling neutron stars
- Effect of nuclear saturation parameters on possible maximum mass of neutron stars
- Stability of the protoneutron stars toward black hole formation
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- Universality in quasinormal modes of neutron stars with quark-hadron crossover
- Effects of multidimensional treatment of gravity in simulations on supernova gravitational waves
- Non-radial pulsations of gravitationally coupled two-fluid neutron stars in general relativity
- Universal relations between the quasinormal modes of neutron stars and magnetic tidal deformability
- Properties and microscopic structures of dense stellar matter in RMF models
- Universality of dual mass-scaled fundamental modes in two-fluid neutron stars with mirror dark matter