Breakdown of the Newton-Einstein Standard Gravity at Low Acceleration in Internal Dynamics of Wide Binary Stars
Kyu-Hyun Chae

TL;DR
This study finds a gravitational anomaly at very low accelerations in wide binary stars, indicating a breakdown of Newtonian gravity and supporting alternative theories like AQUAL.
Contribution
The paper provides empirical evidence of gravity deviation at weak accelerations using Gaia data, highlighting a systematic anomaly consistent with modified gravity theories.
Findings
Detected a gravitational anomaly parameter of 0.034 to 0.109 at accelerations below 10^{-9} m/s^2.
Observed acceleration ratios exceed Newtonian predictions by about 43% at the lowest accelerations.
Results are statistically significant at the 10-sigma level, confirming a breakdown of standard gravity.
Abstract
A gravitational anomaly is found at weak gravitational acceleration m s from analyses of the dynamics of wide binary stars selected from the Gaia DR3 database that have accurate distances, proper motions, and reliably inferred stellar masses. Implicit high-order multiplicities are required and the multiplicity fraction is calibrated so that binary internal motions agree statistically with Newtonian dynamics at a high enough acceleration of m s. The observed sky-projected motions and separation are deprojected to the three-dimensional relative velocity and separation through a Monte Carlo method, and a statistical relation between the Newtonian acceleration (where is the total mass of the binary system) and a kinematic acceleration is compared with the corresponding relation predicted…
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Taxonomy
TopicsGeophysics and Gravity Measurements · Stellar, planetary, and galactic studies · Cosmology and Gravitation Theories
