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Scaling up global kinetic models of pulsar magnetospheres using a hybrid force-free-PIC numerical approach

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arxiv 2406.14512 v1 pith:JWTHAI5Q submitted 2024-06-20 astro-ph.HE physics.comp-phphysics.plasm-ph

classification astro-ph.HEphysics.comp-phphysics.plasm-ph
keywords scalesmodelsnumericalpulsarfieldglobalhybridkinetic
verification ladder T0 review T1 audit T2 compute T3 formal

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The particle-in-cell approach has proven effective at modeling neutron star and black hole magnetospheres from first principles, but global simulations are plagued with an unrealistically small separation between the scales where microphysics operates and the system-size scales due to limited numerical resources. A legitimate concern is whether the scale separation currently achieved is large enough, such that results can be safely extrapolated to realistic scales. In this work, our aim is to explore the effect of scaling physical parameters up, and to check whether salient features uncovered by pure kinetic models at smaller scales are still valid, with a special emphasis on particle acceleration and high-energy radiation emitted beyond the light cylinder. To reach this objective, we develop a new hybrid numerical scheme coupling the ideal force-free and the particle-in-cell methods, to optimize the numerical cost of global models. We propose a domain decomposition of the magnetosphere based on the magnetic field topology using the flux function. The force-free model is enforced along open field lines while the particle-in-cell model is restricted to the reconnecting field line region. As a proof of concept, this new hybrid model is applied to simulate a weak millisecond pulsar magnetosphere with realistic scales using high-resolution axisymmetric simulations. Magnetospheric features reported by previous kinetic models are recovered, and strong synchrotron radiation above 100MeV consistent with the Fermi-LAT gamma-ray pulsar population is successfully reproduced. This work further consolidates the shining reconnecting current sheet scenario as the origin of the gamma-ray emission in pulsars, as well as firmly establishes pulsar magnetospheres as at least TeV particle accelerators.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Gamma-ray Pulsar Emission is Mostly Stable on Timescales from Minutes to Years

    astro-ph.HE 2025-08 conditional novelty 7.0 of 10

    A matched-filter search of 115 gamma-ray pulsars finds no confirmed flux state changes from minutes to years and limits most flux variations to under 10%.

  2. Towards Modelling AR Sco: Calibration -- Reproducing High-Energy Pulsar Emission and Testing Convergence to Aristotelian Electrodynamics

    astro-ph.HE 2025-06 conditional novelty 6.0 of 10

    A gyro-phase-resolved pulsar emission code calibrated against a gyro-centric model reproduces its curvature radiation maps and spectra for a Vela-like pulsar and converges to the Aristotelian Electrodynamics limit.

  3. Modelling the multi-wavelength emission and polarisation signatures of the novel white-dwarf pulsar system AR Sco

    astro-ph.HE 2025-05 conditional novelty 6.0 of 10

    A new particle-dynamics emission code reproduces AR Sco's spectral energy distribution in a magnetic mirror model, constraining the white dwarf magnetic field to roughly 250-300 MG.

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