Ohmic heating from a time-varying stellar magnetic field can rival or exceed XUV heating in the upper atmospheres of close-in exoplanets and can screen the field above the 1 microbar level.
Magma oceans and enhanced volcanism on TRAPPIST-1 planets due to induction heating
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Low-mass M stars are plentiful in the Universe and often host small, rocky planets detectable with the current instrumentation. Recently, seven small planets have been discovered orbiting the ultracool dwarf TRAPPIST-1\cite{Gillon16,Gillon17}. We examine the role of electromagnetic induction heating of these planets, caused by the star's rotation and the planet's orbital motion. If the stellar rotation and magnetic dipole axes are inclined with respect to each other, induction heating can melt the upper mantle and enormously increase volcanic activity, sometimes producing a magma ocean below the planetary surface. We show that induction heating leads the three innermost planets, one of which is in the habitable zone, to either evolve towards a molten mantle planet, or to experience increased outgassing and volcanic activity, while the four outermost planets remain mostly unaffected.
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Ohmic heating in the upper atmosphere of hot exoplanets The influence of a time-varying magnetic field
Ohmic heating from a time-varying stellar magnetic field can rival or exceed XUV heating in the upper atmospheres of close-in exoplanets and can screen the field above the 1 microbar level.