For a rotating quantum-corrected black hole metric, the paper derives orbital and epicyclic frequencies, simulates the accretion disk, and shows the quantum parameter b can shift QPO frequencies by about 25 percent while still falling within observed low-frequency QPO ranges.
Epicyclic oscillations of non-slender fluid tori around Kerr black holes
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Considering epicyclic oscillations of pressure-supported perfect fluid tori orbiting Kerr black holes we examine non-geodesic (pressure) effects on the epicyclic modes properties. Using a perturbation method we derive fully general relativistic formulas for eigenfunctions and eigenfrequencies of the radial and vertical epicyclic modes of a slightly non-slender, constant specific angular momentum torus up to second-order accuracy with respect to the torus thickness. The behaviour of the axisymmetric and lowest-order ($m=\pm 1$) non-axisymmetric epicyclic modes is investigated. For an arbitrary black hole spin we find that, in comparison with the (axisymmetric) epicyclic frequencies of free test particles, non-slender tori receive negative pressure corrections and exhibit thus lower frequencies. Our findings are in qualitative agreement with the results of a recent pseudo-Newtonian study of analogous problem defined within the Paczy{\'n}ski-Wiita potential. Implications of our results on the high-frequency QPO models dealing with epicyclic oscillations are addressed.
citation-role summary
citation-polarity summary
fields
gr-qc 1years
2025 1verdicts
CONDITIONAL 1roles
background 1polarities
unclear 1representative citing papers
citing papers explorer
-
Testing Quantum-Corrected Black Holes with QPOs Observations: A Study of Particle Dynamics and Accretion Flow
For a rotating quantum-corrected black hole metric, the paper derives orbital and epicyclic frequencies, simulates the accretion disk, and shows the quantum parameter b can shift QPO frequencies by about 25 percent while still falling within observed low-frequency QPO ranges.