Thermal Response of A Solar-like Atmosphere to An Electron Beam from A Hot Jupiter: A Numerical Experiment
arXiv:0909.4602 · doi:10.1088/0004-637X/705/2/1189
Abstract
We investigate the thermal response of the atmosphere of a solar-type star to an electron beam injected from a hot Jupiter by performing a 1-dimensional magnetohydrodynamic numerical experiment with non-linear wave dissipation, radiative cooling, and thermal conduction. In our experiment, the stellar atmosphere is non-rotating and is modelled as a 1-D open flux tube expanding super-radially from the stellar photosphere to the planet. An electron beam is assumed to be generated from the reconnection site of the planet's magnetosphere. The effects of the electron beam are then implemented in our simulation as dissipation of the beam momentum and energy at the base of the corona where the Coulomb collisions become effective. When the sufficient energy is supplied by the electron beam, a warm region forms in the chromosphere. This warm region greatly enhances the radiative fluxes corresponding to the temperature of the chromosphere and transition region. The warm region can also intermittently contribute to the radiative flux associated with the coronal temperature due to the thermal instability. However, owing to the small area of the heating spot, the total luminosity of the beam-induced chromospheric radiation is several orders of magnitude smaller than the observed Ca II emissions from HD 179949.
4 figures, accepted for publication in The Astrophysical Journal
References in corpus (10)
- The On/Off Nature of Star-Planet Interactions
- Magnetic Landscape of Sun's Polar Region
- Observational Evidence for Tidal Destruction of Exoplanets
- Extrasolar Giant Planets and X-ray Activity
- Hot Jupiters and stellar magnetic activity
- The magnetic field of the planet-hosting star Bootis
- Transient horizontal magnetic fields in solar plage regions
- MOST detects variability on tau Bootis possibly induced by its planetary companion
- Forecasting Solar Wind Speeds
- Interaction of Close-in Planets with the Magnetosphere of their Host Stars I: Diffusion, Ohmic Dissipation of Time Dependent Field, Planetary Inflation, and Mass Loss
Cited by in corpus (8)
- Hot Jupiters and the evolution of stellar angular momentum
- Star-planet magnetic interaction and evaporation of planetary atmospheres
- Star-planet magnetic interaction and activity in late-type stars with close-in planets
- An Ultraviolet Investigation of Activity on Exoplanet Host Stars
- Elliptical instability in hot Jupiter systems
- Searching for star-planet magnetic interaction in CoRoT observations
- Revealing the drag instability in one-fluid nonideal MHD simulations of a 1D isothermal C-shock
- Resistive MHD Simulations of Stellar Wind-Magnetosphere Coupling in TRAPPIST-1e