On the (im)possibility of testing new physics in exoplanets using transit timing variations: deviation from inverse-square law of gravity
arXiv:1401.7407 · doi:10.1093/mnras/stt2325
Abstract
Ground-based and space-borne observatories studying exoplanetary transits now and in the future will considerably increase the number of known exoplanets and the precision of the measured times of transit minima. Variations in the transit times can not only be used to infer the presence of additional planets, but might also provide opportunities for testing new physics in the places beyond the Solar system. In this work, we take deviation from the inverse-square law of gravity as an example, focus on the fifth-force-like Yukawa-type correction to the Newtonian gravitational force which parameterizes this deviation, investigate its effects on the secular transit timing variations and analyze their observability in exoplanetary systems. It is found that the most optimistic values of Yukawa-type secular transit timing variations are at the level of seconds per year. Those values unfortunately appear only in rarely unique cases and, most importantly, they are still at least two orders of magnitude below the current capabilities of observations. Such a deviation from the inverse-square law of gravity is likely too small to detect for the foreseeable future. Meanwhile, systematic uncertainties, such as the presence of additional and unknown planets, will likely be exceptionally difficult to remove from a signal that should be seen.
8 pages, 2 figures
References in corpus (24)
- Tests of general relativity from timing the double pulsar
- DHP Framework: Digital Health Passports Using Blockchain -- Use case on international tourism during the COVID-19 pandemic
- Long Term Evolution of Close Planets Including the Effects of Secular Interactions
- Phenomenology of the Lense-Thirring effect in the Solar System
- Using long-term transit timing to detect terrestrial planets
- Accurate Measurement in the Field of the Earth of the General-Relativistic Precession of the LAGEOS II Pericenter and New Constraints on Non-Newtonian Gravity
- Observability of the General Relativistic Precession of Periastra in Exoplanets
- Revision of VLT/UVES constraints on a varying fine-structure constant
- Selection of ThAr lines for wavelength calibration of echelle spectra and implications for variations in the fine-structure constant
- gravity: effects on astronomical observation and Solar System experiments and upper-bounds
- Periastron Precession Measurements in Transiting Extrasolar Planetary Systems at the Level of General Relativity
- Effects of Secular Interactions in Extrasolar Planetary Systems
- A Modified Scalar-Tensor-Vector Gravity Theory and the Constraint on its Parameters
- Are we far from testing general relativity with the transiting extrasolar planet HD 209458b `Osiris'?
- Constraints on Galileon-induced precessions from solar system orbital motions
- Testing gravitational theories using Eccentric Eclipsing Detached Binaries
- Constraints on the range lambda of Yukawa-like modifications to the Newtonian inverse-square law of gravitation from Solar System planetary motions
- 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
- Relativistic Effects in Extrasolar Planetary Systems
- Testing Lorentz violation with binary pulsars: constraints on standard model extension
- Solar system constraints on a Rindler-type extra-acceleration from modified gravity at large distances
- Parametrized Post-Newtonian Orbital Effects in Extrasolar Planets
- Phenomenological constraints on Lemaitre-Tolman-Bondi cosmological inhomogeneities from solar system dynamics
Cited by in corpus (6)
- Accurate characterization of the stellar and orbital parameters of the exoplanetary system WASP-33 b from orbital dynamics
- Preliminary constraints on the location of the recently hypothesized new planet of the Solar System from planetary orbital dynamics
- Weyl conformastatic perihelion advance of small body objects
- Post-Newtonian effects on some characteristic timescales of transiting exoplanets
- Anomalous precession of planets on a Weyl conformastatic solution
- When the anomalistic, draconitic and sidereal orbital periods do not coincide: the impact of post-Keplerian perturbing accelerations