Exoplanet Radio Transits as a Probe for Exoplanetary Magnetic Fields -- Time-dependent MHD Simulations
arXiv:2208.06006 · doi:10.3847/1538-4357/ac8978
Abstract
We perform a series of time dependent Magnetohydrodynamic simulations of the HD 189733 star-planet system in order to predict radio transit modulations due to the interaction between the stellar wind and planetary magnetic field. The simulation combines a model for the stellar corona and wind with an exoplanet that is orbiting the star in a fully dynamic, time-dependent manner. Our simulations generate synthetic radio images that enable us to obtain synthetic radio lightcurves in different frequencies. We find a clear evidence for the planetary motion in the radio light curves. Moreover, we find specific repeated features in the light curves that are attributed to the passage of the planetary magnetosphere in front of the star during transit. More importantly, we find a clear dependence in the magnitude and phase of these lightcurve features on the strength of the planetary magnetic field. Our work demonstrates that if radio transits could be observed, they could indeed provide information about the magnetic field strength of the transiting exoplanet. Future work to parameterize these lightcurve features and their dependence on the planetary field strength would provide tools to search for these features in radio observations datasets. As we only consider the thermal radio emission from the host star for our study, very sensitive radio interferometers are necessary to detect these kinds of planetary transit in radio.
19 Pages, 10 Figures
References in corpus (25)
- The Transiting Exoplanet Survey Satellite
- The On/Off Nature of Star-Planet Interactions
- The effect of magnetic topology on thermally-driven winds: towards a general formulation of the braking law
- Predicting low-frequency radio fluxes of known extrasolar planets
- The evolution of the solar wind
- On the environment surrounding close-in exoplanets
- Hot Jupiters and stellar magnetic activity
- The search for radio emission from the exoplanetary systems 55 Cancri, Andromedae, and Boötis using LOFAR beam-formed observations
- The population of M dwarfs observed at low radio frequencies
- Validation of the Alfvén Wave Solar atmosphere Model (AWSoM) with Observations from the Low Corona to 1 AU
- The Effects of Refraction on Transit Transmission Spectroscopy: Application to Earth-like Exoplanets
- Magnetospheric Emissions from the Planet Orbiting tau Boo: A Multi-Epoch Search
- Radio emission and mass loss rate limits of four young solar-type stars
- Low-frequency monitoring of flare star binary CR Draconis: Long-term electron-cyclotron maser emission
- First Detection of Thermal Radio Emission from Solar-Type Stars with the Karl G. Jansky Very Large Array
- MOVES II. Tuning in to the radio environment of HD189733b
- Direct radio discovery of a cold brown dwarf
- 4D Data Cubes from Radio-Interferometric Spectroscopic Snapshot Imaging
- MOVES V. Modelling star-planet magnetic interactions of HD 189733
- The Detectability of Radio Auroral Emission from Proxima B
- Modeling Solar Wind Variations over an 11-yr Cycle with Alfvén Wave Dissipation: a Parameter Study
- No Massive Companion to the Coherent Radio-Emitting M Dwarf GJ 1151
- Dynamical coupling of a mean-field dynamo and its wind: Feedback loop over a stellar activity cycle
- Planetary transits at radio wavelengths: secondary eclipses of hot Jupiter extended atmospheres
- Radio eclipses of exoplanets by the winds of their host stars