Frame-Dragging in Extrasolar Circumbinary Planetary Systems
arXiv:2210.09154 · doi:10.3390/universe8100546
Abstract
Extrasolar circumbinary planets are so called because they orbit two stars instead of just one; to date, an increasing number of such planets have been discovered with a variety of techniques. If the orbital frequency of the hosting stellar pair is much higher than the planetary one, the tight stellar binary can be considered as a matter ring current generating its own post-Newtonian stationary gravitomagnetic field through its orbital angular momentum. It affects the orbital motion of a relatively distant planet with Lense-Thirring-type precessional effects which, under certain circumstances, may amount to a significant fraction of the static, gravitoelectric ones, analogous to the well known Einstein perihelion precession of Mercury, depending only on the masses of the system's bodies. Instead, when the gravitomagnetic field is due solely to the spin of each of the central star(s), the Lense-Thirring shifts are several orders of magnitude smaller than the gravitoelectric ones. In view of the growing interest in the scientific community about the detection of general relativistic effects in exoplanets, the perspectives of finding new scenarios for testing such a further manifestation of general relativity might be deemed worth of further investigations.
LaTex2e, 15 pages, no tables, 2 figures. Accepted for publication in Universe
References in corpus (12)
- Gravity Probe B: Final Results of a Space Experiment to Test General Relativity
- The Transiting Circumbinary Planets Kepler-34 and Kepler-35
- The sdB+M Eclipsing System HW Virginis and its Circumbinary Planets
- General Relativity and Cosmology: Unsolved Questions and Future Directions
- The First Circumbinary Planet Found by Microlensing: OGLE-2007-BLG-349L(AB)c
- Observability of the General Relativistic Precession of Periastra in Exoplanets
- A gravito-electromagnetic analogy based on tidal tensors
- Periastron Precession Measurements in Transiting Extrasolar Planetary Systems at the Level of General Relativity
- Are we far from testing general relativity with the transiting extrasolar planet HD 209458b `Osiris'?
- Classical and relativistic node precessional effects in WASP-33b and perspectives for detecting them
- Classical and relativistic long-term time variations of some observables for transiting exoplanets
- Parametrized Post-Newtonian Orbital Effects in Extrasolar Planets