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arXiv · 2605.14956

Gravitational Wave Propagation through Viscous Matter

Abstract

It has been known that gravitational waves (GWs) transfer energy to viscous matter through which they propagate, but the effect is too weak to be astrophysically significant. Using linearized perturbations about a Minkowski background, we previously showed that the interaction can become important when the distance between matter and source is smaller than the GW wavelength. Here, we review extensions to more realistic backgrounds, namely Schwarzschild spacetime and a static spherically symmetric setting. We find that GW damping and the associated heating of the viscous fluid are enhanced, and can lead to substantial attenuation or even gamma-ray bursts. We investigate astrophysical scenarios where these effects may be relevant, including core-collapse supernovae, binary neutron star mergers, and accretion onto binary black hole mergers.

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Vishnu Kakkat, Ulrich K. Beckering Vinckers, Nigel T. Bishop, Amos S. Kubeka, Monos Naidoo, Udaykrishna Thattarampilly, Petrus J. van der Walt. 2026-05-14. Gravitational Wave Propagation through Viscous Matter. https://arxiv.org/abs/2605.14956

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