4.6 Article

Jupiter radio emission induced by Ganymede and consequences for the radio detection of exoplanets

Journal

ASTRONOMY & ASTROPHYSICS
Volume 618, Issue -, Pages -

Publisher

EDP SCIENCES S A
DOI: 10.1051/0004-6361/201833586

Keywords

radio continuum: planetary systems; plasmas; magnetic fields; planet-star interactions; planets and satellites: individuals: Jupiter, Ganymede, Io; catalogs

Funding

  1. Programme National de Planetologie
  2. Programme National Soleil-Terre
  3. Action Specifique SKA-LOFAR of CNRS/INSU, France
  4. project CNPq/PQ, Brazil [302583/2015-7]
  5. Labex Plas@Par - Agence Nationale de la Recherche as part of the programme Investissements d'avenir [ANR-11-IDEX-0004-02]
  6. Conseil Regional of the Region Centre in France
  7. Programme National Soleil-Terre of CNRS-INSU

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By analysing a database of 26 yr of observations of Jupiter with the Nancay Decameter Array, we unambiguously identify the radio emissions caused by the Ganymede-Jupiter interaction. We study the energetics of these emissions via the distributions of their intensities, duration, and power, and compare them to the energetics of the Io-Jupiter radio emissions. This allows us to demonstrate that the average emitted radio power is proportional to the Poynting flux from the rotating Jupiter's magnetosphere intercepted by the obstacle. We then generalize this result to the radio-magnetic scaling law that appears to apply to all plasma interactions between a magnetized flow and an obstacle, magnetized or not. Extrapolating this scaling law to the parameter range corresponding to hot Jupiters, we predict large radio powers emitted by these objects, that should result in detectable radio flux with new-generation radiotelescopes. Comparing the distributions of the durations of Ganymede-Jupiter and Io-Jupiter emission events also suggests that while the latter results from quasi-permanent Alfven wave excitation by Io, the former likely results from sporadic reconnection between magnetic fields Ganymede and Jupiter, controlled by Jupiter's magnetic field geometry and modulated by its rotation.

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