Multi-resonance orbital model of high-frequency quasi-periodic oscillations: possible high-precision determination of black hole and neutron star spin
Zdenek Stuchlik, Andrea Kotrlova, Gabriel Torok

TL;DR
This paper proposes a multi-resonance model to improve the precision of black hole and neutron star spin measurements using high-frequency QPOs, accounting for multiple resonances at different disc radii.
Contribution
It introduces a multi-resonance framework and a resonant switch model that enhance the accuracy of spin estimates from HF QPO observations.
Findings
Triple frequency ratios can precisely determine black hole spin.
Resonant switch model constrains neutron star mass and spin.
Multiple resonances at different radii improve measurement accuracy.
Abstract
Using known frequencies of the twin-peak high-frequency quasiperiodic oscillations (HF QPOs) and known mass of the central black hole, the black-hole dimensionless spin can be determined by assuming a concrete version of the resonance model. However, a wide range of observationally limited values of the black hole mass implies low precision of the spin estimates. We discuss the possibility of higher precision of the black hole spin measurements in the framework of a multi-resonance model inspired by observations of more than two HF QPOs in the black hole systems, which are expected to occur at two (or more) different radii of the accretion disc. For the black hole systems we focus on the special case of duplex frequencies, when the top, bottom, or mixed frequency is common at two different radii where the resonances occur giving triple frequency sets. The sets of triple frequency ratios…
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