Wave-like warp propagation in circumbinary discs I. Analytic theory and numerical simulations
Stefano Facchini, Giuseppe Lodato, Daniel J. Price

TL;DR
This paper investigates warp propagation in circumbinary discs through analytic theory and numerical simulations, confirming linear theory predictions in certain regimes and revealing non-linear effects like disc breaking.
Contribution
It provides a detailed comparison between analytic linear theory and 3D simulations for warp evolution, including non-linear regimes leading to disc breaking.
Findings
Good agreement between theory and simulations for small inclinations
Linear equations reproduce diffusive warp behavior when viscosity exceeds scale height ratio
Non-linear regime shows disc breaking and independent precession of inner disc
Abstract
In this paper we analyse the propagation of warps in protostellar circumbinary discs. We use these systems as a test environment in which to study warp propagation in the bending-wave regime, with the addition of an external torque due to the binary gravitational potential. In particular, we want to test the linear regime, for which an analytic theory has been developed. In order to do so, we first compute analytically the steady state shape of an inviscid disc subject to the binary torques. The steady state tilt is a monotonically increasing function of radius. In the absence of viscosity, the disc does not present any twist. Then, we compare the time-dependent evolution of the warped disc calculated via the known linearised equations both with the analytic solutions and with full 3D numerical simulations, which have been performed with the PHANTOM SPH code using 2 million particles.…
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