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Modified Gravity (MOG) fits to observed radial acceleration of SPARC galaxies
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abstract
The equation of motion in the generally covariant modified gravity (MOG) theory leads, for weak gravitational fields and non-relativistic motion, to a modification of Newton's gravitational acceleration law. In addition to the metric $g_{\mu\nu}$, MOG has a vector field $\phi_\mu$ that couples with gravitational strength to all baryonic matter. The gravitational coupling strength is determined by the MOG parameter $\alpha$, while parameter $\mu$ is the small effective mass of $\phi_\mu$. The MOG acceleration law has been demonstrated to fit a wide range of galaxies, galaxy clusters and the Bullet Cluster and Train Wreck Cluster mergers. For the SPARC sample of rotationally supported spiral and irregular galaxies, McGaugh et al. [24] (MLS) have found a radial acceleration relation (RAR) that relates accelerations derived from galaxy rotation curves to Newtonian accelerations derived from galaxy mass models. Using the same SPARC galaxy data, mass models independently derived from that data, and MOG parameters $\alpha$ and $\mu$ that run with galaxy mass, we demonstrate that adjusting galaxy parameters within $\pm 1$-sigma bounds can yield MOG predictions consistent with the given rotational velocity data. Moreover, the same adjusted parameters yield a good fit to the RAR of MLS, with the RAR parameter $a_0=(5.4\pm .3)\times 10^{-11}\,{\rm m/s^2}$.
Forward citations
Cited by 3 Pith papers
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CMB Acoustic Power Spectra in STVG-MOG
STVG-MOG makes pre-recombination scalar perturbations degenerate with ΛCDM by letting the vector field φ_μ act as collisionless pressureless dust with ρ_φ ∝ a^{-3} while keeping G_eff ≈ G_N on acoustic scales.
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Modified Gravity Theories in Light of the Anomalous Velocity Dispersion of NGC1052-DF2
NGC1052-DF2 and NGC1052-DF4 velocity dispersions are consistent with MOND, MOG, Weyl gravity and GR without dark matter, but Verlinde's emergent gravity is disfavored at D=20 Mpc.
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Galaxy Formation in the Early Universe
MOG's stronger gravity shortens gas collapse times, which the author proposes explains JWST's early massive galaxies, but no quantitative test is given.
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