General-Relativistic Simulations of Four States of Accretion onto Millisecond Pulsars
Kyle Parfrey, Alexander Tchekhovskoy

TL;DR
This paper presents the first general-relativistic MHD simulations of accretion onto millisecond pulsars, revealing four distinct accretion regimes and the formation of relativistic jets, advancing understanding of pulsar accretion physics.
Contribution
It introduces a novel MHD method capable of simulating highly magnetized regions and demonstrates the first time-dependent relativistic simulations of accretion onto millisecond pulsars.
Findings
Identified four accretion regimes based on mass accretion rate.
Showed transition from isolated pulsar to accreting state with jet formation.
Revealed conditions for pulsar wind expulsion of accretion flow.
Abstract
Accreting neutron stars can power a wide range of astrophysical phenomena including short- and long-duration gamma-ray bursts, ultra-luminous X-ray sources, and X-ray binaries. Numerical simulations are a valuable tool for studying the accretion-disk--magnetosphere interaction that is central to these problems, most clearly for the recently discovered transitional millisecond pulsars. However, magnetohydrodynamic (MHD) methods, widely used for simulating accretion, have difficulty in highly magnetized stellar magnetospheres, while force-free methods, suitable for such regions, cannot include the accreting gas. We present an MHD method that can stably evolve essentially force-free, highly magnetized regions, and describe the first time-dependent relativistic simulations of magnetized accretion onto millisecond pulsars. Our axisymmetric general-relativistic MHD simulations for the first…
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