The Influence of General Relativity on the Spins of Celestial Bodies in Inclined Orbits
arXiv:2501.02717 · doi:10.3847/1538-4357/ada5fc
Abstract
Through the Rossiter-McLaughlin effect, several hot Jupiters have been found to exhibit spin-orbit misalignment, and even retrograde orbits. The high obliquity observed in these planets can be attributed to two primary formation mechanisms, as summarized in the existing literature. First, the host star's spin becomes misaligned with the planetary disk during the late stages of star formation, primarily due to chaotic accretion and magnetic interactions between the star and the planetary disk. Second, the orbital inclination of an individual planet can be excited by dynamical processes such as planet-planet scattering, the Lidov-Kozai cycle, and secular chaos within the framework of Newtonian mechanics. This study introduces a third mechanism, where, within the framework of general relativity, the post-Newtonian spin-orbit coupling term induces precession of the host star's spin around the orbital angular momentum. The orbital inclination, relative to a reference plane, can expand the range of deviation in the spatial orientation of the bodies' spins from the plane's normal. The varying amplitude and period of spin precession for both the star and the planet are derived theoretically, and the results, which can be applied without restriction, agree well with numerical simulations.
20 pages 17 figures, ApJ accepted
References in corpus (25)
- Formation of Hot Planets by a combination of planet scattering, tidal circularization, and Kozai mechanism
- Origins of Eccentric Extrasolar Planets: Testing the Planet-Planet Scattering Model
- Higher-order spin effects in the dynamics of compact binaries I. Equations of motion
- Misaligned spin-orbit in the XO-3 planetary system?
- General Relativity and Cosmology: Unsolved Questions and Future Directions
- Post-Oligarchic Evolution of Protoplanetary Embryos and the Stability of Planetary Systems
- Editorial for the Special Issue 100 Years of Chronogeometrodynamics: The Status of the Einstein's Theory of Gravitation in Its Centennial Year
- Observability of the General Relativistic Precession of Periastra in Exoplanets
- Periastron Precession Measurements in Transiting Extrasolar Planetary Systems at the Level of General Relativity
- Symplectic structure of post-Newtonian Hamiltonian for spinning compact binaries
- Construction of Explicit Symplectic Integrators in General Relativity. I. Schwarzschild Black Holes
- Construction of explicit symplectic integrators in general relativity. II. Reissner-Nordstrom black holes
- Construction of explicit symplectic integrators in general relativity. IV. Kerr black holes
- Construction of explicit symplectic integrators in general relativity. III. Reissner-Nordstrom-(anti)-de Sitter black holes
- 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
- The Aligned Orbit of WASP-148b, the Only Known Hot Jupiter with a Nearby Warm Jupiter Companion, from NEID and HIRES
- Classical and relativistic long-term time variations of some observables for transiting exoplanets
- Applying explicit symplectic integrator to study chaos of charged particles around magnetized Kerr black hole
- Parametrized Post-Newtonian Orbital Effects in Extrasolar Planets
- Detecting General Relativistic Orbital Precession in Transiting Hot Jupiters
- Observable Predictions from Perturber-coupled High-eccentricity Tidal Migration of Warm Jupiters
- Frame-Dragging in Extrasolar Circumbinary Planetary Systems
- A first-order secular theory for the post-Newtonian two-body problem with spin -- I: The restricted case
- The impact of classical and General Relativistic obliquity precessions on the habitability of circumstellar neutron stars' planets