Can magnetic fields be detected during the inspiral of binary neutron stars?
arXiv:0901.2722 · doi:10.1111/j.1745-3933.2009.00745.x
Abstract
Using accurate and fully general-relativistic simulations we assess the effect that magnetic fields have on the gravitational-wave emission produced during the inspiral and merger of magnetized neutron stars. In particular, we show that magnetic fields have an impact after the merger, because they are amplified by a Kelvin-Helmholtz instability, but also during the inspiral, most likely because the magnetic tension reduces the stellar tidal deformation for extremely large initial magnetic fields, B_0>~10^{17}G. We quantify the influence of magnetic fields by computing the overlap, O, between the waveforms produced during the inspiral by magnetized and unmagnetized binaries. We find that for any realistic magnetic field strength B_0<~10^{14}G the overlap during the inspiral is O>~0.999 and is quite insensitive to the mass of the neutron stars. Only for unrealistically large magnetic fields like B_0~10^{17}G the overlap does decrease noticeably, becoming at our resolutions O<~0.76/0.67 for stars with baryon masses M_b~1.4/1.6 Msun, respectively. Because neutron stars are expected to merge with magnetic fields ~10^{8}-10^{10}G and because present detectors are sensitive to O<~0.995, we conclude that it is very unlikely that the present detectors will be able to discern the presence of magnetic fields during the inspiral of neutron stars.
5 pages, 4 figures. Small changes to text and figures. Matches version to appear on MNRAS Letters
References in corpus (9)
- Producing ultra-strong magnetic fields in neutron star mergers
- Model Waveform Accuracy Standards for Gravitational Wave Data Analysis
- Accurate evolutions of inspiralling neutron-star binaries: prompt and delayed collapse to black hole
- Recoil velocities from equal-mass binary black-hole mergers: a systematic investigation of spin-orbit aligned configurations
- Simulating coalescing compact binaries by a new code SACRA
- Magnetized Neutron Star Mergers and Gravitational Wave Signals
- General relativistic simulations of magnetized binary neutron star mergers
- WhiskyMHD: a new numerical code for general relativistic magnetohydrodynamics
- Gravitational waves from relativistic neutron star mergers with nonzero-temperature equations of state
Cited by in corpus (23)
- THC: a new high-order finite-difference high-resolution shock-capturing code for special-relativistic hydrodynamics
- Accurate evolutions of inspiralling and magnetized neutron-stars: equal-mass binaries
- Analytic modelling of tidal effects in the relativistic inspiral of binary neutron stars
- When Did the Remnant of GW170817 Collapse to a Black Hole?
- Binary Neutron Star Mergers and Short Gamma-Ray Bursts: Effects of Magnetic Field Orientation, Equation of State, and Mass Ratio
- Stability of general-relativistic accretion disks
- Variability from Nonaxisymmetric Fluctuations Interacting with Standing Shocks in Tilted Black Hole Accretion Disks
- Radio precursors to neutron star binary mergings
- The trumpet solution from spherical gravitational collapse with puncture gauges
- The Peculiar Precursor of a Gamma-Ray Burst from a Binary Merger Involving a Magnetar
- Modeling the early afterglow in the short and hard GRB 090510
- GRB 211211A: a Prolonged Central Engine under a Strong Magnetic Field Environment
- Crustal magnetic fields do not lead to large magnetic-field amplifications in binary neutron-star mergers
- Constraints on the merging binary neutron star mass distribution and equation of state based on the incidence of jets in the population
- Performance-Portable Binary Neutron Star Mergers with AthenaK
- Entropy-limited higher-order central scheme for neutron star merger simulations
- A hybrid approach to long-term binary neutron-star simulations
- Handing off the outcome of binary neutron star mergers for accurate and long-term post-merger simulations
- Premerger phenomena in neutron-star binary coalescences
- Turbulence and Magnetic Reconnection in Relativistic Multispecies Plasmas
- Magnetohydrodynamic waves excited by a coupling between gravitational waves and a strongly magnetized plasma in binaries of neutron stars
- General relativistic magnetohydrodynamics simulations for binary neutron star mergers
- Neutrino propagation in winds around the central engine of sGRB