Conformally-rescaled Schwarzschild metrics do not predict flat galaxy rotation curves
arXiv:2206.08097 · doi:10.1140/epjc/s10052-022-10531-6
Abstract
For conformally invariant gravity theories defined on Riemannian spacetime and having the Schwarzschild--de-Sitter (SdS) metric as a solution in the Einstein gauge, we consider whether one may conformally rescale this solution to obtain flat rotation curves, such as those observed in galaxies, without the need for dark matter. Contrary to recent claims in the literature, we show that if one works in terms of quantities that can be physically measured, then in any conformal frame the trajectories followed by `ordinary' matter particles are merely the timelike geodesics of the SdS metric, as one might expect. This resolves the apparent frame dependence of physical predictions and unambiguously yields rotation curves with no flat region. We also show that attempts to model rising rotation curves by fitting the coefficient of the quadratic term in the SdS metric individually for each galaxy are precluded, since this coefficient is most naturally interpreted as proportional to a global cosmological constant. We further extend our analysis beyond static, spherically-symmetric systems to show that the invariance of particle dynamics to the choice of conformal frame holds for arbitrary metrics, again as expected. Moreover, we show that this conclusion remains valid for conformally invariant gravity theories defined on more general Weyl--Cartan spacetimes, which include Weyl, Riemann--Cartan and Riemannian spacetimes as special cases.
5 pages, no figures, accepted as a Letter by European Physical Journal C
References in corpus (9)
- Dark Matter Candidates from Particle Physics and Methods of Detection
- SPARC: Mass Models for 175 Disk Galaxies with Spitzer Photometry and Accurate Rotation Curves
- One Law To Rule Them All: The Radial Acceleration Relation of Galaxies
- Impact of a global quadratic potential on galactic rotation curves
- The Dispersion of Fast Radio Bursts from a Structured Intergalactic Medium at Redshifts z < 1.5
- Spontaneous breaking of conformal invariance in theories of conformally coupled matter and Weyl gravity
- Weyl gauge theories of gravity do not predict a second clock effect
- Note on the absence of the second clock effect in Weyl gauge theories of gravity
- Conformal gravity does not predict flat galaxy rotation curves