Impact of Orbital Eccentricity on the Detection of Transiting Extrasolar Planets
arXiv:0801.2579 · doi:10.1086/587798
Abstract
For extrasolar planets with orbital periods, P>10 days, radial velocity surveys find non-circular orbital eccentricities are common, <e>~0.3. Future surveys for extrasolar planets using the transit technique will also have sensitivity to detect these longer period planets. Orbital eccentricity affects the detection of extrasolar planets using the transit technique in two opposing ways: an enhancement in the probability for the planet to transit near pericenter and a reduction in the detectability of the transit due to a shorter transit duration. For an eccentricity distribution matching the currently known extrasolar planets with P>10 day, the probability for the planet to transit is ~1.25 times higher than the equivalent circular orbit and the average transit duration is ~0.88 times shorter than the equivalent circular orbit. These two opposing effects nearly cancel for an idealized field transit survey with independent photometric measurements that are dominated by Poisson noise. The net effect is a modest ~4% increase in the transiting planet yield compared to assuming all planets have circular orbits. When intrinsic variability of the star or correlated photometric measurements are the dominant source of noise, the transit detectability is independent of the transit duration. In this case the transit yield is ~25% higher than that predicted under the assumption of circular orbits. Since the Kepler search for Earth-sized planets in the habitable zone of a Solar-type star is limited by intrinsic variability, the Kepler mission is expected to have a ~25% higher planet yield than that predicted for circular orbits if the Earth-sized planets have an orbital eccentricity distribution similar to the currently known Jupiter-mass planets.
8 pages, 6 Figures, Submitted to ApJ
References in corpus (10)
- The effect of red noise on planetary transit detection
- Origins of Eccentric Extrasolar Planets: Testing the Planet-Planet Scattering Model
- Post-Oligarchic Evolution of Protoplanetary Embryos and the Stability of Planetary Systems
- On the evolution of eccentric and inclined protoplanets embedded in protoplanetary disks
- Effects of Orbital Eccentricity on Extrasolar Planet Transit Detection and Lightcurves
- Five Intermediate-Period Planets from the N2K Sample
- Characterizing the Orbital Eccentricities of Transiting Extrasolar Planets with Photometric Observations
- High eccentricity planets from the Anglo-Australian Planet Search
- The CORALIE survey for southern extra-solar planets XV. Discovery of two eccentric planets orbiting HD4113 and HD156846
- HD 17156b: A Transiting Planet with a 21.2 Day Period and an Eccentric Orbit
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- The Photoeccentric Effect and Proto-Hot Jupiters I. Measuring photometric eccentricities of individual transiting planets
- Constraining Orbital Parameters Through Planetary Transit Monitoring
- An Exomoon Survey of 70 Cool Giant Exoplanets and the New Candidate Kepler-1708 b-i
- Transiting planets - lightcurve analysis for eccentric orbits
- CKS VIII: Eccentricities of Kepler Planets and Tentative Evidence of a High Metallicity Preference for Small Eccentric Planets
- Bayesian priors for the eccentricity of transiting planets
- Predicting the Yields of Photometric Surveys for Transiting Extrasolar Planets
- The Photoeccentric Effect and Proto-Hot Jupiters II. KOI-1474.01, a candidate eccentric planet perturbed by an unseen companion
- Using Stellar Densities to Evaluate Transiting Exoplanetary Candidates
- Warm Jupiters in TESS Full-Frame Images: A Catalog and Observed Eccentricity Distribution for Year 1
- Characterizing Long-Period Transiting Planets Observed by Kepler
- Scaling K2. VI. Reduced Small Planet Occurrence in High Galactic Amplitude Stars
- The Pan-Pacific Planet Search VII: The most eccentric planet orbiting a giant star
- How Low Can You Go? The Photoeccentric Effect for Planets of Various Sizes
- Transit and Radial Velocity Survey Efficiency Comparison for a Habitable Zone Earth
- Planets larger than Neptune have elevated eccentricities
- Observational Window Functions in Planet Transit Surveys
- Extent of pollution in planet-bearing stars
- Validation of HD 183579b using archival radial velocities: a warm-neptune orbiting a bright solar analog
- Period Ratio Sculpting Near Second-Order Mean-Motion Resonances
- Revised Properties and Dynamical History for the HD 17156 System
- Can tidal evolution lead to close-in planetary bodies around white dwarfs II: volcanism and transits
- Relative occurrence rates of terrestrial planets orbiting FGK stars
- Following up TESS Single Transits With Archival Photometry and Radial Velocities
- Transit Detection of Radial Velocity Planets
- Forecasting the detectability of known radial velocity planets with the upcoming CHEOPS mission