Force-free wave interaction in magnetar magnetospheres: Computational modeling in axisymmetry

Fuente: arXiv
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Autori principali: Mahlmann, Jens F., Aloy, Miguel Á., Li, Xinyu
Natura: Preprint
Pubblicazione: 2024
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author Mahlmann, Jens F.
Aloy, Miguel Á.
Li, Xinyu
author_facet Mahlmann, Jens F.
Aloy, Miguel Á.
Li, Xinyu
contents Crustal quakes of highly magnetized neutron stars can disrupt their magnetospheres, triggering energetic phenomena like X-ray and fast radio bursts (FRBs). Understanding plasma wave dynamics in these extreme environments is vital for predicting energy transport across scales to the radiation length. This study models relativistic plasma wave interaction in magnetar magnetospheres with force-free electrodynamics simulations. For propagation along curved magnetic field lines, we observe the continuous conversion of Alfvén waves to fast magnetosonic (FMS) waves. The conversion efficiency can be up to three times higher when counter-propagating Alfvén waves interact in the equatorial region. Alfvén waves generate FMS waves of twice their frequency during their first crossing of the magnetosphere. After the initial transient burst of FMS waves, Alfvén waves convert to FMS waves periodically, generating variations on timescales of the magnetospheric Alfvén wave crossing time. This decaying FMS wave tail carries a significant portion (half) of the total energy emitted. Plastic damping of 'bouncing' Alfvén waves by the magnetar crust has minimal impact on the FMS efficiency. We discuss the implications of the identified wave phenomena for magnetar observations. Outgoing FMS waves can develop electric zones, potential sources of coherent radiation. Long-wavelength FMS waves could generate FRBs through reconnection beyond the light cylinder.
format Preprint
id arxiv_https___arxiv_org_abs_2405_12272
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Force-free wave interaction in magnetar magnetospheres: Computational modeling in axisymmetry
Mahlmann, Jens F.
Aloy, Miguel Á.
Li, Xinyu
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
Plasma Physics
Crustal quakes of highly magnetized neutron stars can disrupt their magnetospheres, triggering energetic phenomena like X-ray and fast radio bursts (FRBs). Understanding plasma wave dynamics in these extreme environments is vital for predicting energy transport across scales to the radiation length. This study models relativistic plasma wave interaction in magnetar magnetospheres with force-free electrodynamics simulations. For propagation along curved magnetic field lines, we observe the continuous conversion of Alfvén waves to fast magnetosonic (FMS) waves. The conversion efficiency can be up to three times higher when counter-propagating Alfvén waves interact in the equatorial region. Alfvén waves generate FMS waves of twice their frequency during their first crossing of the magnetosphere. After the initial transient burst of FMS waves, Alfvén waves convert to FMS waves periodically, generating variations on timescales of the magnetospheric Alfvén wave crossing time. This decaying FMS wave tail carries a significant portion (half) of the total energy emitted. Plastic damping of 'bouncing' Alfvén waves by the magnetar crust has minimal impact on the FMS efficiency. We discuss the implications of the identified wave phenomena for magnetar observations. Outgoing FMS waves can develop electric zones, potential sources of coherent radiation. Long-wavelength FMS waves could generate FRBs through reconnection beyond the light cylinder.
title Force-free wave interaction in magnetar magnetospheres: Computational modeling in axisymmetry
topic High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
Plasma Physics
url https://arxiv.org/abs/2405.12272