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Magnetically Controlled Outflows from Hot Jupiters

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arxiv 1101.4234 v1 pith:MIPDM2XX submitted 2011-01-21 astro-ph.EP

classification astro-ph.EP
keywords flowfieldmassplanetregimecontrolledfieldsoutflow
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abstract

Recent observations that indicate that some extrasolar planets observed in transit can experience mass loss from their surfaces. Motivated by these findings, this paper considers outflows from Hot Jupiters in the regime where the flow is controlled by magnetic fields. Given the mass loss rates estimated from current observations --- and from theoretical arguments --- magnetic fields will dominate the flow provided that field strength near the planet is greater than $\sim1$ gauss, comparable to the surface fields of the Sun and Jupiter. The problem can be separated into an inner regime, near the planet, where the outflow is launched, and an outer regime where the flow follows (primarily) stellar field lines and interacts with the stellar wind. This paper concentrates on the flow in the inner regime. For a dipole planetary field with a spatially constant background contribution, we construct a set of orthogonal coordinates that follow the field lines and determine the corresponding differential operators. Under the assumption of isothermal flow, we analytically find the conditions required for escaping material to pass smoothly through the sonic transition, and then estimate the mass outflow rates. These magnetically controlled outflows differ significantly from previous spherical models: The outflow rates are somewhat smaller, typically ${\dot M}$ $\sim 10^{9}$ g/s, and the flow is launched primarily from the polar regions of the planet. In addition, if the stellar wind is strong enough, the flow could be reversed and the planet could gain mass from the star.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Star-planet interaction in the Proxima system

    astro-ph.EP 2026-05 unverdicted novelty 7.0 of 10

    Spectroscopic monitoring detects phase-locked flares to Proxima d and flare-intensity modulation by Proxima b, producing a -16 G polar field estimate for the inner planet via Poynting-flux modeling.

  2. Volcanic Satellites and Ion Escape in the Magnetospheres of Ultra-Cool and Brown Dwarf Stars

    astro-ph.EP 2026-07 conditional novelty 6.0 of 10

    Plasma feeding the radio magnetosphere of LSR J1835+3259 could be sourced by a weak stellar ionospheric outflow or, more plausibly, by a tidally heated Io-like volcanic satellite orbiting within ~10 stellar radii.

  3. A Self-Consistent 3D Hydrodynamic Model for Helium Transit Signatures in Evaporating Hot Jupiters

    astro-ph.EP 2026-07 conditional novelty 6.0 of 10

    A 3D hydrodynamic model with self-consistent hydrogen-helium chemistry shows stellar winds compress escaping hot-Jupiter atmospheres and suppress the 1083 nm helium triplet signal, while a young star's strong XUV flux...

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