Electrodynamics and dissipation in the binary magnetosphere of pre-merger neutron stars
arXiv:2412.16280 · doi:10.3847/2041-8213/adb5fd
Abstract
We investigate energy release in the interacting magnetospheres of binary neutron stars (BNSs) with global 3D force-free electrodynamics simulations. The system dynamics depend on the inclinations and of the stars' magnetic dipole moments relative to their orbital angular momentum. The simplest aligned configuration () has no magnetic field lines connecting the two stars. Remarkably, it still develops separatrix current sheets warping around each star and a dissipative region at the interface of the two magnetospheres. A Kelvin-Helmholtz (KH)-type instability drives significant dissipation at the magnetospheric interface, generating local Alfvénic turbulence and escaping fast magnetosonic waves. Binaries with inclined magnetospheres release energy in two ways: via KH instability at the interface and via magnetic reconnection flares in the twisted flux bundles connecting the companions. Outgoing compressive waves occur in a broad range of BNS parameters, possibly developing shocks and sourcing fast radio bursts. We discuss implications for X-ray and radio precursors of BNS mergers.
15 pages, 9 figures, accepted for publication in ApJL
References in corpus (7)
- The synchrotron maser emission from relativistic shocks in Fast Radio Bursts: 1D PIC simulations of cold pair plasmas
- Electrodynamics of pulsar magnetospheres
- Coherent Electromagnetic Emission from Relativistic Magnetized Shocks
- Pair Fireball Precursors of Neutron Star Mergers
- Triggering magnetar outbursts in 3D force-free simulations
- Three-dimensional dynamics of strongly twisted magnetar magnetospheres: Kinking flux tubes and global eruptions
- Diffusivity in force-free simulations of global magnetospheres
Cited by in corpus (4)
- Production of Jets before Neutron Star Mergers
- Electromagnetic Precursors to Binary Neutron Star Mergers: Kinetic Simulations of Magnetospheric Flaring
- A Falsifiable Timing Test for the Double-White-Dwarf Model of Long-Period Transients
- Global Magnetohydrodynamic Simulations of Monster Shocks in Neutron Star Magnetospheres