Sustained eruptions on Enceladus explained by turbulent dissipation in tiger stripes
Edwin S. Kite, Allan M. Rubin

TL;DR
This paper presents a model explaining sustained eruptions on Enceladus through turbulent dissipation in ice fissures, accounting for observed phase lag, power output, and long-term stability of the tiger stripe activity.
Contribution
The study introduces a novel model of tidally-flexed slots with turbulent dissipation that explains eruption persistence, phase lag, and energy output, supporting long-term stability of Enceladus's plumes.
Findings
Model explains sustained eruptions and phase lag.
Turbulent dissipation maintains ocean and eruptions.
Long-term power output consistent with observations.
Abstract
Spacecraft observations suggest that the plumes of Saturn's moon Enceladus draw water from a subsurface ocean, but the sustainability of conduits linking ocean and surface is not understood. Observations show sustained (though tidally modulated) fissure eruptions throughout each orbit, and since the 2005 discovery of the plumes. Peak plume flux lags peak tidal extension by 1 radian, suggestive of resonance. Here we show that a model of the tiger stripes as tidally-flexed slots that puncture the ice shell can simultaneously explain the persistence of the eruptions through the tidal cycle, the phase lag, and the total power output of the tiger stripe terrain, while suggesting that the eruptions are maintained over geological timescales. The delay associated with flushing and refilling of \emph{O}(1) m-wide slots with ocean water causes erupted flux to lag tidal forcing and helps to…
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Taxonomy
TopicsAstro and Planetary Science · Geology and Paleoclimatology Research · Geomagnetism and Paleomagnetism Studies
