For metal-rich sunlike single stars, radial-velocity planet periods show a double-peaked pileup with a deep gap around a few hundred days, a pattern the paper argues needs more data to confirm.
Does the innermost occurrence distribution measure tidal dissipation, reveal a flow of giant planets, or both?
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
The occurrence distribution of the shortest period giant exoplanets as found by Kepler show a drop-off that is a remarkable match to the drop-off expected by taking migration due to tides in the star. We present a comparison that can show the level of tidal dissipation (friction) as a function of the distribution of the ages of the star and planet system, with known dependencies on basic star and planet parameters. Use of this relation enables constraints to be put on the value of the tidal dissipation, constraints that will be improved as the distribution of the ages are determined. For the giant planets, this leads to an unexpectedly low value of tidal dissipation. This over-abundance of short period giant planets may be due to a continuing resupply of longer period giant planets migrating into a shorter period pileup, disrupting the presence of smaller planets along the way. Perhaps the occurrence distribution of close Neptune sized planets will better measure the tidal friction, while the distribution of Jupiter sized planets reveals that giant planets are more likely to complete a gradual migration into the star.
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astro-ph.IM 1years
2019 1verdicts
UNVERDICTED 1representative citing papers
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Characterizing the Distribution of Parameters of Planets Found by Radial Velocity is Essential for Understanding Planet Formation and Evolution
For metal-rich sunlike single stars, radial-velocity planet periods show a double-peaked pileup with a deep gap around a few hundred days, a pattern the paper argues needs more data to confirm.