Accurate Computation of the Screening of Scalar Fifth Forces in Galaxies
arXiv:2310.19955 · doi:10.1088/1475-7516/2024/04/004
Abstract
Screening mechanisms allow light scalar fields to dynamically avoid the constraints that come from our lack of observation of a long-range fifth force. Galactic scale tests are of particular interest when the light scalar is introduced to explain the dark matter or dark energy that dominates our cosmology. To date, much of the literature that has studied screening in galaxies has described screening using simplifying approximations. In this work, we calculate numerical solutions for scalar fields with screening mechanisms in galactic contexts, and use these to derive new, precise conditions governing where fifth forces are screened. We show that the commonly used binary screened/unscreened threshold can predict a fifth force signal in situations where a fuller treatment does not, leading us to conclude that existing constraints might be significantly overestimated. We show that various other approximations of the screening radius provide a more accurate proxy to screening, although they fail to exactly reproduce the true screening surface in certain regions of parameter space. As a demonstration of our scheme, we apply it to an idealised Milky Way and thus identify the region of parameter space in which the solar system is screened.
28 pages, 5 figures. The code associated with this paper is publicly available at github.com/Bradley-March/GalacticScreeningConditions
References in corpus (25)
- Models of f(R) Cosmic Acceleration that Evade Solar-System Tests
- Disappearing cosmological constant in f(R) gravity
- Beyond the Cosmological Standard Model
- The mass distribution and gravitational potential of the Milky Way
- Constraining f(R) Gravity as a Scalar Tensor Theory
- Evading Equivalence Principle Violations, Cosmological and other Experimental Constraints in Scalar Field Theories with a Strong Coupling to Matter
- Environmental Dependence of Masses and Coupling Constants
- f(R) Gravity and Chameleon Theories
- The Eighteenth Data Release of the Sloan Digital Sky Surveys: Targeting and First Spectra from SDSS-V
- Equivalence Principle Implications of Modified Gravity Models
- Tidal Tails Test the Equivalence Principle in the Dark Sector
- A Compendium of Chameleon Constraints
- Galilean Equivalence for Galactic Dark Matter
- The Novel Probes Project -- Tests of Gravity on Astrophysical Scales
- Testing Screened Modified Gravity
- Galaxy morphology rules out astrophysically relevant Hu-Sawicki gravity
- The Edge of the Galaxy
- Speeding up -body simulations of modified gravity: Chameleon screening models
- Galaxy Satellites and the Weak Equivalence Principle
- Impact of symmetron screening on the Hubble tension: new constraints using cosmic distance ladder data
- How chameleons core dwarfs with cusps
- Fingerprints of modified gravity on galaxies in voids
- Stellar Streams in Chameleon Gravity
- Calibrating galaxy formation effects in galactic tests of fundamental physics
- Using Elliptical Galaxy Kinematics to Compare of the Strength of Gravity in Cosmological Regions of Differing Gravitational Potential -- A First Look
Cited by in corpus (7)
- Towards unveiling the large-scale nature of gravity with the wavelet scattering transform
- Testing screened modified gravity with SDSS-IV-MaNGA
- A particle's perspective on screening mechanisms
- Euclid preparation LXXI. Simulations and nonlinearities beyond CDM. 3. Constraints on models from the photometric primary probes
- Enhancing Cosmological Model Selection with Interpretable Machine Learning
- asimulation: Domain formation and impact on observables in resolved cosmological simulations of the (a)symmetron
- Gravitational waves from dark domain walls