A new approach to obtaining cluster mass from Sunyaev--Zel'dovich Effect observations
arXiv:1101.2176 · doi:10.1088/2041-8205/728/2/L35
Abstract
The accurate determination of cluster total mass is crucial for their use as probes of cosmology. Recently, the Sunyaev--Zel'dovich effect (SZE) has been exploited in surveys to find galaxy clusters, but X-ray or lensing follow up observations, or empirically-determined scaling relations between SZE flux and total mass, have been required to estimate their masses. Here we demonstrate a new method of mass determination from SZE observations, applicable in the absence of X-ray or lensing data. This method relies on the virial relation and a minimal set of assumptions, following an approach analogous to that used for stellar structure. By exploiting the virial relation, we implicitly incorporate an additional constraint from thermodynamics that is not used in deriving the equation of hydrostatic equilibrium. This allows us to relate cluster total mass directly to the robustly-determined quantity, the integrated SZE flux.
5 pages. Accepted for publication in ApJ Letters. This includes a correction: the published version neglected surface pressure in the virial theorem
References in corpus (9)
- The universal galaxy cluster pressure profile from a representative sample of nearby systems (REXCESS) and the Y_SZ-M_500 relation
- Chandra temperature profiles for a sample of nearby relaxed galaxy clusters
- Effects of Baryons and Dissipation on the Matter Power Spectrum
- Gas entropy in a representative sample of nearby X-ray galaxy clusters (REXCESS): relationship to gas mass fraction
- Images, structural properties and metal abundances of galaxy clusters observed with Chandra ACIS-I at 0.1<z<1.3
- Simulations of the Sunyaev-Zel'dovich Power Spectrum with AGN Feedback
- Sunyaev-Zel'dovich Cluster Profiles Measured with the South Pole Telescope
- The Atacama Cosmology Telescope: Physical Properties and Purity of a Galaxy Cluster Sample Selected via the Sunyaev-Zel'dovich Effect
- Planck pre-launch status: High Frequency Instrument polarization calibration
Cited by in corpus (20)
- On the Cluster Physics of Sunyaev-Zel'dovich Surveys I: The Influence of Feedback, Non-thermal Pressure and Cluster Shapes on Y-M Scaling Relations
- Mass profiles of Galaxy Clusters from X-ray analysis
- CLASH: Mass Distribution in and around MACS J1206.2-0847 from a Full Cluster Lensing Analysis
- Weak lensing analysis of SZ-selected clusters of galaxies from the SPT and Planck surveys
- Closing the Loop: A Self-Consistent Model of Optical, X-ray, and SZ Scaling Relations for Clusters of Galaxies
- CLASH: Complete Lensing Analysis of the Largest Cosmic Lens MACS J0717.5+3745 and Surrounding Structures
- Comparison of Pressure Profiles of Massive Relaxed Galaxy Clusters using Sunyaev-Zel'dovich and X-ray Data
- Pressure distribution of the high-redshift cluster of galaxies CL J1226.9+3332 with NIKA
- Pressure profiles and mass estimates using high-resolution Sunyaev-Zel'dovich effect observations of Zwicky 3146 with MUSTANG-2
- A multi-instrument non-parametric reconstruction of the electron pressure profile in the galaxy cluster CLJ1226.9+3332
- Subaru weak-lensing measurement of a z = 0.81 cluster discovered by the Atacama Cosmology Telescope Survey
- The Atacama Cosmology Telescope: High-Resolution Sunyaev-Zel'dovich Array Observations of ACT SZE-selected Clusters from the Equatorial Strip
- Precise weak lensing constraints from deep high-resolution images: VLT/HAWK-I analysis of the super-massive galaxy cluster RCS2232727.7020437 at
- Detailed SZ study of 19 LoCuSS galaxy clusters: masses and temperatures out to the virial radius
- A simple parametric model for spherical galaxy clusters
- A Multi-Wavelength Mass Analysis of RCS2 J232727.6-020437, a ~3x10M Galaxy Cluster at z=0.7
- Multi-probe analysis of the galaxy cluster CL J1226.9+3332: Hydrostatic mass and hydrostatic-to-lensing bias
- AMI SZ observations and Bayesian analysis of a sample of six redshift-one clusters of galaxies
- CARMA observations of massive Planck-discovered cluster candidates at z>0.5 associated with WISE overdensities: Breaking the size-flux degeneracy
- On the Helium fingers in the intracluster medium