Hydrostatic equilibrium of X-ray gas in X-COP clusters with HMG
arXiv:2408.08102 · doi:10.3847/1538-4357/adb723
Abstract
Modified Newtonian Dynamics (MOND) was originally proposed to model galaxy rotation curves without dark matter. However, MOND presents difficulties in explaining the Radial Acceleration Relation (RAR) observed in galaxy clusters, and moreover, it does not completely eliminate the need for dark matter, since it requires using non-luminous particles (e.g. cold molecular gas or durst, or neutrinos) to explain the observed hydrostatic equilibrium of the hot gas. Hyperconical Modified Gravity (HMG) offers a relativistic framework that recovers the success of MOND in galaxy rotation curves as a natural particular case, and it could potentially reconcile the above discrepancies without invoking any type of dark matter. This Letter analyses the performance of the HMG model for hydrostatic equilibrium in 12 X-COP galaxy clusters, with a special focus on five objects with available complete stellar mass information: A1795, A2029, A2142, A2319 and A644. Specifically, we used high-resolution X-ray data with which gas density and mass profiles were previously derived to constrain modified gravity models. Our results show that the hydrostatic equilibrium of analysed cluster gas is more naturally adjusted to the HMG model beyond 500 kpc without the need to fit parameters, but further research is required to expand to more spatial scales.
6 pages, 2 figures
References in corpus (13)
- A direct empirical proof of the existence of dark matter
- The Radial Acceleration Relation in Rotationally Supported Galaxies
- From galactic bars to the Hubble tension: weighing up the astrophysical evidence for Milgromian gravity
- X-ray Group and cluster mass profiles in MOND: Unexplained mass on the group scale
- Fast galaxy bars continue to challenge standard cosmology
- Cosmology and Convention
- Near-infrared evolution of brightest cluster galaxies in the most X-ray luminous clusters since z=1
- The distribution and morphologies of Fornax Cluster dwarf galaxies suggest they lack dark matter
- The gravitational field of X-COP galaxy clusters
- Measuring galaxy cluster mass profiles into the low acceleration regime with galaxy kinematics
- Intrinsic scatter of caustic masses and hydrostatic bias: An observational study
- Galaxy rotation curve in hyperconical universes: a natural relativistic MOND
- What if the universe expands linearly? A local general relativity to solve the "zero active mass" problem