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PLANET OCCURRENCE WITHIN 0.25 AU OF SOLAR-TYPE STARS FROM <i>KEPLER</i>

The Astrophysical Journal Supplement Series · 2012 · Vol. 201(2) · pp. 15–15
Andrew W. HowardGeoffrey W. MarcySteve BrysonJon M. JenkinsJason F. RoweNatalie M. BatalhaW. J. BoruckiDavid KochEdward W. DunhamT. N. GautierJeffrey Van CleveWilliam D. CochranDavid W. LathamJack J. LissauerGuillermo TorresTimothy M. BrownRonald L. GillilandLars A. BuchhaveDouglas A. CaldwellJ. Christensen‐DalsgaardDavid R. CiardiFrançois FressinMichael R. HaasSteve B. HowellH. KjeldsenSara SeagerLeslie A. RogersDimitar SasselovJason H. SteffenGibor BasriDavid CharbonneauJessie L. ChristiansenBruce ClarkeA. K. DupreeDaniel C. FabryckyDebra A. FischerEric B. FordJonathan J. FortneyJill TarterForrest R. GirouardMatthew J. HolmanJohn Asher JohnsonTodd C. KlausPavel MachálekAlthea V. MoorheadRobert C. MoreheadDarin RagozzinePeter TenenbaumJoseph D. TwickenSamuel N. QuinnHoward IsaacsonAvi ShporerP. W. LucasLucianne M. WalkowiczWilliam F. WelshAlan P. BossEdna DeVoreAlan GouldJeffrey C. SmithRobert MorrisA. PršaTimothy D. MortonMartin StillSusan E. ThompsonSusan E. MullallyMichael EndlPhillip J. MacQueen

Abstract

We report the distribution of planets as a function of planet radius, orbital period, and stellar effective temperature for orbital periods less than 50 days around solar-type (GK) stars. These results are based on the 1235 planets (formally "planet candidates") from the Kepler mission that include a nearly complete set of detected planets as small as 2 R . For each of the 156,000 target stars, we assess the detectability of planets as a function of planet radius, R p , and orbital period, P, using a measure of the detection efficiency for each star. We also correct for the geometric probability of transit, R /a. We consider first Kepler target stars within the "solar subset" having T eff = 4100-6100 K, log g = 4.0-4.9, and Kepler magnitude Kp < 15 mag, i.e., bright, main-sequence GK stars. We include only those stars having photometric noise low enough to permit detection of planets down to 2 R . We count planets in small domains of R p and P and divide by the included target stars to calculate planet occurrence in each domain. The resulting occurrence of planets varies by more than three orders of magnitude in the radius-orbital period plane and increases substantially down to the smallest radius (2 R ) and out to the longest orbital period (50 days, 0.25 AU) in our study. For P < 50 days, the distribution of planet radii is given by a power law, df/d log R = k R R with k R = 2.9 +0.5 -0.4 , = -1.92 0.11, and R R p /R . This rapid increase in planet occurrence with decreasing planet size agrees with the prediction of core-accretion formation but disagrees with population synthesis models that predict a desert at super-Earth and Neptune sizes for close-in orbits. Planets with orbital periods shorter than 2 days are extremely rare; for R p > 2 R we measure an occurrence of less than 0.001 planets per star. For all planets with orbital periods less than 50 days, we measure occurrence of 0.130 0.008, 0.023 0.003, and 0.013 0.002 planets per star for planets with radii 2-4, 4-8, and 8-32 R , in agreement with

Stellar, planetary, and galactic studiesAstro and Planetary ScienceAstronomy and Astrophysical ResearchPlanetPhysicsAstrophysicsStarsRADIUSEarth radiusPlanetary migrationAstronomyExoplanetPlanetary system

Funding

  • National Science Foundation
  • National Aeronautics and Space Administration
  • National Center for Atmospheric Research
  • Science Mission Directorate
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HOT STARS WITH HOT JUPITERS HAVE HIGH OBLIQUITIES
The Astrophysical Journal Letters · 2010 · 701 citations
<i>KEPLER MISSION</i> DESIGN, REALIZED PHOTOMETRIC PERFORMANCE, AND EARLY SCIENCE
The Astrophysical Journal Letters · 2010 · 1,123 citations
A synthetic view on structure and evolution of the Milky Way
Astronomy and Astrophysics · 2003 · 1,946 citations
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PLANET OCCURRENCE WITHIN 0.25 AU OF SOLAR-TYPE STARS FROM <i>KEPLER</i> · Scinovex