Prospecting transit duration variations in extrasolar planetary systems
arXiv:1109.0936 · doi:10.1051/0004-6361/201117207
Abstract
In transiting planetary systems, the angle between the orbital angular momentum and the stellar spin is usually constrained through the Rossiter-McLaughlin effect observed in radial velocity and can be subject to large uncertainties, especially for hot stars (T_eff > 6250 K). It is thus interesting to have an alternative method to constrain the value of the obliquity and to detect companions that might have disturbed the orbit of the planet. We show how the long-term variations in the transit duration (TDV) can be used to constrain the obliquity of the stellar rotation axis. We introduce a simple theory to express the secular variations in the orbital elements and their effects on the TDVs with a general formulation valid for both oblique and eccentric systems. Parameters or orbital elements that cannot be directly measured, such as the longitude of the ascending node of the orbit, are avoided thus allowing us a straightforward application. We compute the expected TDVs for the presently known transiting systems, adopting their parameters found in the literature. Considering the capabilities of the present or next generation space-borne telescopes, we point out the systems that could be readily observed and discuss the constraints derivable on their fundamental parameters. TDVs can be used to constrain the obliquity of the stars (and possibly of the planets in systems younger than 10 -- 100 Myr), giving information about the formation scenarios, the strength of the tidal coupling, and the internal structure of both the stars and the planets. Moreover, they can provide an indirect indication of the presence of other bodies, even with a mass comparable with that of the Earth, because they give rise to additional contributions to the nodal precession.
8 pages, 1 figure, accepted by A&A
References in corpus (16)
- DHP Framework: Digital Health Passports Using Blockchain -- Use case on international tourism during the COVID-19 pandemic
- Improved parameters for extrasolar transiting planets
- Transiting exoplanets from the CoRoT space mission I - CoRoT-Exo-1b: a low-density short-period planet around a G0V star
- XO-3b: A Massive Planet in an Eccentric Orbit Transiting an F5V Star
- On the Spin-Orbit Misalignment of the XO-3 Exoplanetary System
- Rotation speed and stellar axis inclination from p modes: How CoRoT would see other suns
- Observability of the General Relativistic Precession of Periastra in Exoplanets
- HAT-P-6b: A Hot Jupiter transiting a bright F star
- Spin-Orbit Alignment for the Eccentric Exoplanet HD 147506b
- Ground-based secondary eclipse detection of the very-hot Jupiter OGLE-TR-56b
- Transiting exoplanets from the CoRoT space mission III. The spectroscopic transit of CoRoT-Exo-2b with SOPHIE and HARPS
- Periastron Precession Measurements in Transiting Extrasolar Planetary Systems at the Level of General Relativity
- Transiting exoplanets from the CoRoT space mission XIV. CoRoT-11b: a transiting massive "hot-Jupiter" in a prograde orbit around a rapidly rotating F-type star
- OGLE2-TR-L9: An extrasolar planet transiting a fast-rotating F3 star
- A Prograde, Low-Inclination Orbit for the Very Hot Jupiter WASP-3b
- Classical and relativistic long-term time variations of some observables for transiting exoplanets
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