Phase-Space Synchronization Driven by Moon-Magnetosphere Coupling in Gas Giants

Fuente: arXiv
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Main Authors: Osmane, Adnane, Roussos, Elias, Kollmann, Peter
Format: Preprint
Published: 2025
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author Osmane, Adnane
Roussos, Elias
Kollmann, Peter
author_facet Osmane, Adnane
Roussos, Elias
Kollmann, Peter
contents We present a new theoretical framework to describe the rapid and spatially localized loss of energetic particles in planetary radiation belts, focusing on interactions between gas giant magnetospheres and their moons. Observations show that flux depletions--known as microsignatures--often refill on timescales comparable to a single drift period, which conflicts with traditional quasi-linear radial diffusion models that assume slow, gradual transport and predict refilling only over many drift periods. To resolve this inconsistency, we develop a drift-kinetic model that explicitly captures localized losses occurring on timescales similar to the azimuthal drift period. We demonstrate that such localized loss regions can synchronize the azimuthal Fourier modes of the particle distribution function, producing apparent refilling through phase-space synchronization rather than diffusion. The resulting governing equations are mathematically equivalent to a generalized Kuramoto model, widely used to describe synchronization phenomena. This framework provides a first-principles, non-diffusive explanation for the evolution of microsignatures near moons, highlighting synchronization as a fundamental yet overlooked mechanism in magnetized plasma environments.
format Preprint
id arxiv_https___arxiv_org_abs_2507_07739
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Phase-Space Synchronization Driven by Moon-Magnetosphere Coupling in Gas Giants
Osmane, Adnane
Roussos, Elias
Kollmann, Peter
Plasma Physics
Space Physics
We present a new theoretical framework to describe the rapid and spatially localized loss of energetic particles in planetary radiation belts, focusing on interactions between gas giant magnetospheres and their moons. Observations show that flux depletions--known as microsignatures--often refill on timescales comparable to a single drift period, which conflicts with traditional quasi-linear radial diffusion models that assume slow, gradual transport and predict refilling only over many drift periods. To resolve this inconsistency, we develop a drift-kinetic model that explicitly captures localized losses occurring on timescales similar to the azimuthal drift period. We demonstrate that such localized loss regions can synchronize the azimuthal Fourier modes of the particle distribution function, producing apparent refilling through phase-space synchronization rather than diffusion. The resulting governing equations are mathematically equivalent to a generalized Kuramoto model, widely used to describe synchronization phenomena. This framework provides a first-principles, non-diffusive explanation for the evolution of microsignatures near moons, highlighting synchronization as a fundamental yet overlooked mechanism in magnetized plasma environments.
title Phase-Space Synchronization Driven by Moon-Magnetosphere Coupling in Gas Giants
topic Plasma Physics
Space Physics
url https://arxiv.org/abs/2507.07739