Published April 20, 2016 | Version Submitted + Published
Journal Article Open

Transit timing variations for planets near eccentricity-type mean motion resonances

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon University of Washington

Abstract

We derive the transit timing variations (TTVs) of two planets near a second-order mean motion resonance (MMR) on nearly circular orbits. We show that the TTVs of each planet are given by sinusoids with a frequency of jn_2 -(j-2){n_1, where j ≥ 3 is an integer characterizing the resonance and n2 and n1 are the mean motions of the outer and inner planets, respectively. The amplitude of the TTV depends on the mass of the perturbing planet, relative to the mass of the star, and on both the eccentricities and longitudes of pericenter of each planet. The TTVs of the two planets are approximated anti-correlated, with phases of φ and ≈φ + π, where the phase φ also depends on the eccentricities and longitudes of pericenter. Therefore, the TTVs caused by proximity to a second-order MMR do not in general uniquely determine both planet masses, eccentricities, and pericenters. This is completely analogous to the case of TTVs induced by two planets near a first-order MMR. We explore how other TTV signals, such as the short-period synodic TTV or a first-order resonant TTV, in combination with the second-order resonant TTV, can break degeneracies. Finally, we derive approximate formulae for the TTVs of planets near any order eccentricity-type MMR; this shows that the same basic sinusoidal TTV structure holds for all eccentricity-type resonances. Our general formula reduces to previously derived results near first-order MMRs.

Additional Information

© 2016. The American Astronomical Society. Received 2015 September 28; accepted 2016 January 20; published 2016 April 18. We would like to thank the referee who helped us to clarify and improve this document. K.D. acknowledges support from the JCPA postdoctoral fellowship at Caltech. E.A. acknowledges support from NASA grants NNX13AF20G, NNX13AF62G, and NASA Astrobiology Institutes Virtual Planetary Laboratory, supported by NASA under cooperative agreement NNH05ZDA001C.

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Published - apj_821_2_96.pdf

Submitted - 1509.08460v1.pdf

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Additional details

Identifiers

Eprint ID
63920
Resolver ID
CaltechAUTHORS:20160125-085419401

Related works

Funding

Caltech JCPA Postdoctoral Fellowship
NASA
NNX13AF20G
NASA
NNX13AF62G
NASA
NNH05ZDA001C

Dates

Created
2016-01-25
Created from EPrint's datestamp field
Updated
2021-11-10
Created from EPrint's last_modified field