Spiral Density Waves and Torque Balance in the Kerr Geometry

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Autori principali: Dyson, Conor, D'Orazio, Daniel J.
Natura: Preprint
Pubblicazione: 2026
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author Dyson, Conor
D'Orazio, Daniel J.
author_facet Dyson, Conor
D'Orazio, Daniel J.
contents Extreme mass-ratio inspirals (EMRIs) in relativistic accretion discs are a key science target for the upcoming LISA mission. Existing models of disc-EMRI interactions typically rely on crude dynamical friction or Newtonian planetary migration prescriptions, which fail to capture the relativistic fluid response induced by the binary potential. In this work we address this gap by providing the relativistic calculation. We apply standard methods from self-force theory, black hole perturbation theory, and relativistic stellar perturbation theory to perform the full fluid calculation of the relativistic analogue of planetary migration for the first time. We calculate the response of a fluid in the perturbing potential of an EMRI consistently incorporating pressure effects. Using a master enthalpy-like variable and linearised fluid theory, we reconstruct the fluid perturbations and relativistic spiral arm structure for a range of spin values in the Kerr geometry. We conclude by deriving a relativistic torque-balance equation that enables computation and comparison of local torques with advected angular momentum through the disc. This opens a promising route towards establishing torque-balance relations between integrated disc torques arising from fluid perturbations and the forces acting on EMRIs embedded in matter.
format Preprint
id arxiv_https___arxiv_org_abs_2601_19123
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Spiral Density Waves and Torque Balance in the Kerr Geometry
Dyson, Conor
D'Orazio, Daniel J.
General Relativity and Quantum Cosmology
Earth and Planetary Astrophysics
Astrophysics of Galaxies
High Energy Astrophysical Phenomena
High Energy Physics - Theory
Extreme mass-ratio inspirals (EMRIs) in relativistic accretion discs are a key science target for the upcoming LISA mission. Existing models of disc-EMRI interactions typically rely on crude dynamical friction or Newtonian planetary migration prescriptions, which fail to capture the relativistic fluid response induced by the binary potential. In this work we address this gap by providing the relativistic calculation. We apply standard methods from self-force theory, black hole perturbation theory, and relativistic stellar perturbation theory to perform the full fluid calculation of the relativistic analogue of planetary migration for the first time. We calculate the response of a fluid in the perturbing potential of an EMRI consistently incorporating pressure effects. Using a master enthalpy-like variable and linearised fluid theory, we reconstruct the fluid perturbations and relativistic spiral arm structure for a range of spin values in the Kerr geometry. We conclude by deriving a relativistic torque-balance equation that enables computation and comparison of local torques with advected angular momentum through the disc. This opens a promising route towards establishing torque-balance relations between integrated disc torques arising from fluid perturbations and the forces acting on EMRIs embedded in matter.
title Spiral Density Waves and Torque Balance in the Kerr Geometry
topic General Relativity and Quantum Cosmology
Earth and Planetary Astrophysics
Astrophysics of Galaxies
High Energy Astrophysical Phenomena
High Energy Physics - Theory
url https://arxiv.org/abs/2601.19123