Numerical Solutions of the External Field Effect on the Radial Acceleration in Disk Galaxies
Kyu-Hyun Chae, Mordehai Milgrom

TL;DR
This paper numerically investigates the external field effect in MOND theories on disk galaxy rotation curves, revealing differences between AQUAL and QUMOND predictions and providing improved analytic expressions.
Contribution
It compares AQUAL and QUMOND theories numerically, highlighting their differences in external field effects on galaxy rotation curves and offering refined analytic approximations.
Findings
QUMOND results align with previous studies
AQUAL predicts weaker external field effects than QUMOND
Outer rotation curve effects can be approximated analytically
Abstract
In MOND (modified Newtonian dynamics)-based theories the strong equivalence principle is generically broken in an idiosyncratic manner, manifested in the action of an "external field effect (EFE)". The internal dynamics in a self-gravitating system is affected even by a constant external field. In disk galaxies the EFE can induce warps and modify the rotational speeds. Due to the non-linearity of MOND, it is difficult to derive analytic expressions of this important effect in a disk. Here we study numerically the EFE in two non-relativistic Lagrangian theories of MOND: the `Aquadratic-Lagrangian' theory (AQUAL) and `Quasilinear MOND' (QUMOND). For AQUAL we consider only the axisymmetric field configurations with the external field along the disk axis, or a spherical galaxy with test-particle orbits inclined to the external field. For the more manageable QUMOND we calculate also the…
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Taxonomy
TopicsGalaxies: Formation, Evolution, Phenomena · Astrophysical Phenomena and Observations · Pulsars and Gravitational Waves Research
