Inhibition of the electron cyclotron maser instability in the dense magnetosphere of a hot Jupiter
arXiv:1806.08147 · doi:10.1093/mnras/sty1652
Abstract
Hot Jupiter (HJ) type exoplanets are expected to produce strong radio emission in the MHz range via the Electron Cyclotron Maser Instability (ECMI). To date, no repeatable detections have been made. To explain the absence of observational results, we conduct 3D adaptive mess refinement (AMR) magnetohydrodynamic (MHD) simulations of the magnetic interactions between a solar type star and HJ using the publicly available code PLUTO. The results are used to calculate the efficiency of the ECMI at producing detectable radio emission from the planets magnetosphere. We also calculate the frequency of the ECMI emission, providing an upper and lower bounds, placing it at the limits of detectability due to Earth's ionospheric cutoff of . The incident kinetic and magnetic power available to the ECMI is also determined and a flux of for an observer at is calculated. The magnetosphere is also characterized and an analysis of the bow shock which forms upstream of the planet is conducted. This shock corresponds to the thin shell model for a colliding wind system. A result consistent with a colliding wind system. The simulation results show that the ECMI process is completely inhibited by the planets expanding atmosphere, due to absorption of UV radiation form the host star. The density, velocity, temperature and magnetic field of the planetary wind are found to result in a magnetosphere where the plasma frequency is raised above that due to the ECMI process making the planet undetectable at radio MHz frequencies.
18 pages, 15 figures
References in corpus (21)
- PLUTO: a Numerical Code for Computational Astrophysics
- Atmospheric Escape from Hot Jupiters
- The On/Off Nature of Star-Planet Interactions
- Early UV Ingress in WASP-12b: Measuring Planetary Magnetic Fields
- Accretion-Powered Stellar Winds II: Numerical Solutions for Stellar Wind Torques
- Predicting low-frequency radio fluxes of known extrasolar planets
- XUV-driven mass loss from extrasolar giant planets orbiting active stars
- Magnetically controlled mass loss from extrasolar planets in close orbits
- On the environment surrounding close-in exoplanets
- On the diversity of magnetic interactions in close-in star-planet systems
- Atmosphere expansion and mass loss of close-orbit giant exoplanets heated by stellar XUV: I. Modeling of hydrodynamic escape of upper atmospheric material
- GMRT Low Frequency Observations of Extrasolar Planetary Systems
- How Expanded Ionospheres of Hot Jupiters Can Prevent Escape of Radio Emission Generated by the Cyclotron Maser Instability
- Limits on low frequency radio emission from southern exoplanets with the Murchison Widefield Array
- MOVES I. The evolving magnetic field of the planet-hosting star HD189733
- Asymptotic Opening Angles for Colliding-Wind Bow Shocks: the Characteristic-Angle Approximation
- Discovery of electron cyclotron MASER emission from the magnetic Bp star HD 133880 with the Giant Metrewave Radio Telescope
- A combined multiwavelength VLA/ALMA/Chandra study unveils the complex magnetosphere of the B-type star HR5907
- The Coherent Radio Emission from the RS CVn Binary HR 1099
- True versus apparent shapes of bow shocks
- Extrasolar giant magnetospheric response to steady-state stellar wind pressure at 10, 5, 1, and 0.2 AU
Cited by in corpus (11)
- The impact of intrinsic magnetic field on the absorption signatures of elements probing the upper atmosphere of HD209458b
- MOVES II. Tuning in to the radio environment of HD189733b
- Chasing star-planet magnetic interactions: the case of Kepler-78
- Supermassive Hot Jupiters Provide More Favourable Conditions for the Generation of Radio Emission via the Cyclotron Maser Instability - A Case Study Based on Tau Bootis b
- Hot Jupiter accretion: 3D MHD simulations of star-planet wind interaction
- Modeling star-planet interactions in far-out planetary and exoplanetary systems
- Survivability of radio-loud planetary cores orbiting white dwarfs
- Exoplanet Transits with Next-Generation Radio Telescopes
- Radio eclipses of exoplanets by the winds of their host stars
- Microlensed Radio Emission from Exoplanets
- Radio prospects of extrasolar aurorae polaris as a probe of planetary magnetism