Magnetic Braking and Damping of Differential Rotation in Massive Stars
arXiv:1812.03176 · doi:10.1103/PhysRevD.99.064057
Abstract
Fragmentation of highly differentially rotating massive stars that undergo collapse has been suggested as a possible channel for binary black hole formation. Such a scenario could explain the formation of the new population of massive black holes detected by the LIGO/VIRGO gravitational wave laser interferometers. We probe that scenario by performing general relativistic magnetohydrodynamic simulations of differentially rotating massive stars supported by thermal radiation pressure plus a gas pressure perturbation. The stars are initially threaded by a dynamically weak, poloidal magnetic field confined to the stellar interior. We find that magnetic braking and turbulent viscous damping via magnetic winding and the magnetorotational instability in the bulk of the star redistribute angular momentum, damp differential rotation and induce the formation of a massive and nearly uniformly rotating inner core surrounded by a Keplerian envelope. The core + disk configuration evolves on a secular timescale and remains in quasi-stationary equilibrium until the termination of our simulations. Our results suggest that the high degree of differential rotation required for seed density perturbations to trigger gas fragmentation and binary black hole formation is likely to be suppressed during the normal lifetime of the star prior to evolving to the point of dynamical instability to collapse. Other cataclysmic events, such as stellar mergers leading to collapse, may therefore be necessary to reestablish sufficient differential rotation and density perturbations to drive nonaxisymmetric modes leading to binary black hole formation.
11 pages, 5 figures. Minor changes, matches published version
References in corpus (20)
- X-ray Properties of Black-Hole Binaries
- GW170814: A Three-Detector Observation of Gravitational Waves from a Binary Black Hole Coalescence
- GW170608: Observation of a 19-solar-mass Binary Black Hole Coalescence
- Primordial Black Holes as Dark Matter
- Global simulations of strongly magnetized remnant massive neutron stars formed in binary neutron star mergers
- Fully General Relativistic Simulations of Black Hole-Neutron Star Mergers
- Evolution of magnetized, differentially rotating neutron stars: Simulations in full general relativity
- Relativistic Simulations of Black Hole-Neutron Star Mergers: Effects of black-hole spin
- Magnetorotational collapse of massive stellar cores to neutron stars: Simulations in full general relativity
- Binary Black-Hole Mergers in Magnetized Disks: Simulations in Full General Relativity
- Relativistic magnetohydrodynamics in dynamical spacetimes: A new AMR implementation
- Accretion disks around binary black holes of unequal mass: GRMHD simulations of postdecoupling and merger
- Black Hole Formation in Fallback Supernova and the Spins of LIGO Sources
- Disks Around Merging Binary Black Holes: From GW150914 to Supermassive Black Holes
- Non-axisymmetric instability and fragmentation of general relativistic quasi-toroidal stars
- General Relativistic Simulations of Slowly and Differentially Rotating Magnetized Neutron Stars
- Collapse of differentially rotating supermassive stars: Post black hole formation
- AGILE Observations of the Gravitational Wave Source GW170104
- Simulating the Magnetorotational Collapse of Supermassive Stars: Incorporating Gas Pressure Perturbations and Different Rotation Profiles
- Maximally Rotating Supermassive Stars at the Onset of Collapse: The Perturbative Effects of Gas Pressure, Magnetic Fields, Dark Matter and Dark Energy
Cited by in corpus (13)
- Magnetohydrodynamic Simulations of Binary Neutron Star Mergers in General Relativity: Effects of Magnetic Field Orientation on Jet Launching
- Long-term evolution of neutron-star merger remnants in general relativistic resistive-magnetohydrodynamics with a mean-field dynamo term
- Effects of spin on magnetized binary neutron star mergers and jet launching
- Jet Launching from Binary Neutron Star Mergers: Incorporating Neutrino Transport and Magnetic Fields
- Long-term evolution of a merger-remnant neutron star in general relativistic magnetohydrodynamics I: Effect of magnetic winding
- Multimessenger Binary Mergers Containing Neutron Stars: Gravitational Waves, Jets, and -Ray Bursts
- Jet Launching from Merging Magnetized Binary Neutron Stars with Realistic Equations of State
- Gravitational Waves from Disks Around Spinning Black Holes: Simulations in Full General Relativity
- Postmerger multimessenger analysis of binary neutron stars: Effect of the magnetic field strength and topology
- Cosmological magnetic braking and the formation of high-redshift, super-massive black holes
- Maximally Rotating Supermassive Stars at the Onset of Collapse: Effects of Gas Pressure
- The Gravitational Wave Memory from Binary Neutron Star Mergers
- Multimessenger Signatures of Tilted, Self-Gravitating, Black Hole Disks