The MOG weak field approximation and observational test of galaxy rotation curves
J. W. Moffat, S. Rahvar

TL;DR
This paper derives a weak field approximation of MOG theory, introduces an effective gravitational potential with adjustable parameters, and successfully fits galaxy rotation curves without dark matter, linking results to galaxy properties.
Contribution
It provides the first derivation of the weak field limit of MOG and demonstrates its effectiveness in fitting galaxy rotation data with fixed universal parameters.
Findings
MOG's effective potential includes Newtonian and Yukawa terms.
Fixed parameters fit galaxy rotation curves well.
Derived mass-to-light ratios correlate with galaxy color.
Abstract
As an alternative to dark matter models, MOdified Gravity (MOG) theory can compensate for dark matter by a covariant modification of Einstein gravity. The theory introduces two additional scalar fields and one vector field. The aim is to explain the dynamics of astronomical systems based only on their baryonic matter. The effect of the vector field in the theory resembles a Lorentz force where each mass has a charge proportional to the inertial mass. In this work, we obtain the weak field approximation of MOG by perturbing the metric and the fields around Minkowski space-time. We derive an effective gravitational potential which yields the Newtonian attractive force plus a repulsive Yukawa force. This potential, in addition to the Newtonian gravitational constant, , has two additional constant parameters and . We use the THINGS catalog of galaxies and fix the two…
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