4.7 Article

Halted-pendulum Relaxation: Application to White Dwarf Binary Initial Data

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ASTROPHYSICAL JOURNAL
卷 952, 期 1, 页码 -

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IOP Publishing Ltd
DOI: 10.3847/1538-4357/acd75a

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Studying compact-star binaries and their mergers is crucial for determining observable transients. Smoothed particle hydrodynamics (SPH) is an effective numerical technique for studying these mergers due to its excellent conservation properties and ability to represent irregular morphologies. Ensuring regular particle distribution and removing global oscillation modes are essential for accurate simulations. We propose a new relaxation method called halted-pendulum relaxation (HPR) that efficiently removes global oscillation modes and achieves desired density distribution.
Studying compact-star binaries and their mergers is integral to determining progenitors for observable transients. Today, compact-star mergers are typically studied via state-of-the-art computational fluid dynamics codes. One such numerical technique, smoothed particle hydrodynamics (SPH), is frequently chosen for its excellent mass, energy, and momentum conservation. The natural treatment of vacuum and the ability to represent highly irregular morphologies make SPH an excellent tool for the study of compact-star binaries and mergers. For many scenarios, including binary systems, the outcome of simulations is only as accurate as the initial conditions. For SPH, it is essential to ensure that the particles are distributed regularly, representing the initial density profile but without long-range correlations. Particle noise in the form of high-frequency local motion and low-frequency global dynamics must be damped out. Damping the latter can be as computationally intensive as the actual simulation. We discuss a new and straightforward relaxation method, halted-pendulum relaxation (HPR), to remove global oscillation modes of SPH particle configurations. In combination with effective external potentials representing gravitational and orbital forces, we show that HPR has an excellent performance in efficiently relaxing SPH particles to the desired density distribution and removing global oscillation modes. We compare the method to frequently used relaxation approaches and test it on a white dwarf binary model at its Roche-lobe overflow limit. We highlight the importance of our method in achieving accurate initial conditions and its effect on achieving circular orbits and realistic accretion rates when compared with other general relaxation methods.

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