Dissipation, Energy Transfer, and Spindown Luminosity in 2.5D PIC Simulations of the Pulsar Magnetosphere
arXiv:1412.2819 · doi:10.1093/mnras/stv468
Abstract
We perform 2.5D axisymmetric simulations of the pulsar magnetosphere (aligned dipole rotator) using the charge conservative, relativistic, electromagnetic particle in cell code PICsar. Particle in cell codes are a powerful tool to use for studying the pulsar magnetosphere, because they can handle the force-free and vacuum limits and provide a self-consistent treatment of magnetic reconnection. In the limit of dense plasma throughout the magnetosphere, our solutions are everywhere in the force-free regime except for dissipative regions at the polar caps, in the current layers, and at the Y-point. These dissipative regions arise self-consistently, since we do not have any explicit dissipation in the code. A minimum of of the electromagnetic spindown luminosity is transferred to the particles inside 5 light cylinder radii. However, the particles can carry as much as of the spindown luminosity if there is insufficient plasma in the outer magnetosphere to screen the component of electric field parallel to the magnetic field. In reality, the component of the spindown luminosity carried by the particles could be radiated as gamma rays, but high-frequency synchrotron emission would need to be implemented as a sub-grid process in our simulations and is not present for the current suite of runs. The value of the spindown luminosity in our simulations is within of the force-free value, and the structure of the electromagnetic fields in the magnetosphere is on the whole consistent with the force-free model.
9 pages, 5 figures, submitted to MNRAS
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- Efficiency of Synchrotron Radiation from Rotation-Powered Pulsars
- Three-dimensional dissipative pulsar magnetospheres with Aristotelian electrodynamics
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- Radiative pulsar magnetospheres: oblique rotators
- Exploring the energy-dependent radiation properties in dissipative magnetospheres with Fermi pulsars
- Polarized QED Cascades over Pulsar Polar Caps
- Electric Field Screening with Back-Flow at Pulsar Polar Cap
- Intra-pulse variability induced by plasmoid formation in pulsar magnetospheres
- Model of pulsar pair cascades in non uniform electric fields: growth rate, density profile and screening time
- Towards Modelling AR Sco: Calibration -- Reproducing High-Energy Pulsar Emission and Testing Convergence to Aristotelian Electrodynamics