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Probing gas disc physics with LISA: simulations of an intermediate mass ratio inspiral in an accretion disc

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arxiv 1810.03623 v2 pith:AVL6DO5M submitted 2018-10-08 astro-ph.HE

Probing gas disc physics with LISA: simulations of an intermediate mass ratio inspiral in an accretion disc

classification astro-ph.HE
keywords discaccretioninspirallisamassratioalphabinary
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

The coalescence of a compact object with a $10^{4}-10^{7} {\rm M_\odot}$ supermassive black hole (SMBH) produces mHz gravitational waves (GWs) detectable by the future Laser Interferometer Space Antenna (LISA). If such an inspiral occurs in the accretion disc of an active galactic nucleus (AGN), the gas torques imprint a small deviation in the GW waveform. Here we present two-dimensional hydrodynamical simulations with the moving-mesh code DISCO of a BH inspiraling at the GW rate in a binary system with a mass ratio $q\!=\!M_2/M_1\!=\!10^{-3}$, embedded in an accretion disc. We assume a locally isothermal equation of state for the gas (with Mach number $\mathcal{M}=20$) and implement a standard $\alpha$-prescription for its viscosity (with $\alpha = 0.03$). We find disc torques on the binary that are weaker than in previous semi-analytic toy models, and are in the opposite direction: the gas disc slows down, rather than speeds up the inspiral. We compute the resulting deviations in the GW waveform, which scale linearly with the mass of the disc. The SNR of these deviations accumulates mostly at high frequencies, and becomes detectable in a 5-year LISA observation if the total phase shift exceeds a few radians. We find that this occurs if the disc surface density exceeds $\Sigma_0 \gtrsim 10^{2-3}\rm g\,cm^{-2}$, as may be the case in thin discs with near-Eddington accretion rates. Since the characteristic imprint on the GW signal is strongly dependent on disc parameters, a LISA detection of an intermediate mass ratio inspiral would probe the physics of AGN discs and migration.

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Forward citations

Cited by 2 Pith papers

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    gr-qc 2026-07 conditional novelty 5.5

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  2. Waveform Modelling for the Laser Interferometer Space Antenna

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