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New Formation Models for the Kepler-36 SystemFormation of the planets in the Kepler-36 system is modeled by detailed numerical simulations according to the core-nucleated accretion scenario. The standard model is updated to include the dissolution of accreting rocky planetesimals in the gaseous envelope of the planet, leading to substantial enrichment of the envelope mass in heavy elements and a non-uniform composition with depth. For Kepler-36 c, models involving in situ formation and models involving orbital migration are considered. The results are compared with standard formation models. The calculations include the formation (accretion) phase, as well as the subsequent cooling phase, up to the age of Kepler-36 (7 Gyr). During the latter phase, mass loss induced by stellar XUV radiation is included. In all cases, the results fit the measured mass, 7.84 M, and radius, 3.68 R, of Kepler-36 c. Two parameters are varied to obtain these fits: the disk solid surface density at the formation location, and the "efficiency" factor in the XUV mass loss rate. The updated models are hotter and therefore less dense in the silicate portion of the planet and in the overlying layers of H/He, as compared with standard models. The lower densities mean that only about half as much H/He is needed to be accreted to fit the present-day mass and radius constraints. For Kepler-36 b, an updated in situ calculation shows that the entire H/He envelope is lost, early in the cooling phase, in agreement with observation.
Document ID
20205003870
Acquisition Source
Ames Research Center
Document Type
Reprint (Version printed in journal)
Authors
Peter Bodenheimer
(University of California, Santa Cruz Santa Cruz, California, United States)
David J Stevenson
(California Institute of Technology Pasadena, California, United States)
Jack J Lissauer
(Ames Research Center Mountain View, California, United States)
Gennaro D'Angelo
(Los Alamos National Laboratory Los Alamos, New Mexico, United States)
Date Acquired
June 25, 2020
Publication Date
December 10, 2018
Publication Information
Publication: The Astrophysical Journal
Publisher: IOP Science
Volume: 868
Issue: 2
Issue Publication Date: December 1, 2018
ISSN: 0004-637X
e-ISSN: 1538-4357
Subject Category
Astrophysics
Funding Number(s)
WBS: 811073.02.32.01.87
Distribution Limits
Public
Copyright
Public Use Permitted.
Technical Review
Single Expert
Keywords
planets and satellites:formation
planets and satellites: physical evolution
planets and satellites: individual (Kepler-36c
Kepler 36B
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