Quantifying the Projected Suppression of Cluster Escape Velocity Profiles
arXiv:2003.02733 · doi:10.3847/1538-4357/ac4786
Abstract
The 3D radial escape-velocity profile of galaxy clusters has been suggested to be a promising and competitive tool for constraining mass profiles and cosmological parameters in an accelerating universe. However, the observed line-of-sight escape profile is known to be suppressed compared to the underlying 3D radial (or tangential) escape profile. Past work has suggested that velocity anisotropy in the phase-space data is the root cause. Instead, we find that the observed suppression is from the statistical undersampling of the phase spaces and that the 3D radial escape edge can be accurately inferred from projected data. We build an analytical model for this suppression that only requires the number of observed galaxies in the phase-space data within the sky-projected range . The radially averaged suppression function is an inverse power law with and . We test our model with -body simulations, using dark matter particles, subhalos, and semianalytic galaxies as the phase-space tracers, and find excellent agreement. We also assess the model for systematic biases from cosmology (, ), cluster mass (), and velocity anisotropy (). We find that varying these parameters over large ranges can impart a maximal additional fractional change in of . These systematics are highly subdominant (by at least a factor of 13.7) to the suppression from .
References in corpus (11)
- The hierarchical formation of the brightest cluster galaxies
- Virial Scaling of Massive Dark Matter Halos: Why Clusters Prefer a High Normalization Cosmology
- A universal model for halo concentrations
- The recycling of gas and metals in galaxy formation: predictions of a dynamical feedback model
- Dark Energy Survey Year 1 Results: Cosmological Constraints from Cluster Abundances, Weak Lensing, and Galaxy Correlations
- Dark Sky Simulations: Early Data Release
- Velocity Segregation and Systematic Biases In Velocity Dispersion Estimates With the SPT-GMOS Spectroscopic Survey
- Dark Energy: back to Newton?
- Stacking Caustic Masses from Galaxy Clusters
- Inferring Gravitational Potentials from Mass Densities in Cluster-sized Halos
- On Escaping a Galaxy Cluster in an Accelerating Universe