Constraining the multi-scale dark-matter distribution in CASSOWARY 31 with strong gravitational lensing and stellar dynamics
H. Wang, R. Ca\~nameras, G. B. Caminha, S. H. Suyu, A., Y{\i}ld{\i}r{\i}m, G. Chiriv\`i, L. Christensen, C. Grillo, S. Schuldt

TL;DR
This study combines strong gravitational lensing and stellar dynamics to analyze the complex multi-scale dark matter distribution in the peculiar group-scale lens CSWA 31, revealing a dark-matter dominated, fossil group with a shallow mass-density profile.
Contribution
It provides a detailed multi-scale mass model of CSWA 31 using new HST and MUSE data, improving previous analyses and demonstrating the consistency of lensing and dynamical methods.
Findings
BGG dominates within 20 kpc
Group-scale halo dominates at larger radii
Mass profile is similar to higher-mass cluster halos
Abstract
We study the inner structure of the group-scale lens CASSOWARY 31 (CSWA 31) by adopting both strong lensing and dynamical modeling. CSWA 31 is a peculiar lens system. The brightest group galaxy (BGG) is an ultra-massive elliptical galaxy at z = 0.683 with a weighted mean velocity dispersion of km s. It is surrounded by group members and several lensed arcs probing up to ~150 kpc in projection. Our results significantly improve previous analyses of CSWA 31 thanks to the new HST imaging and MUSE integral-field spectroscopy. From the secure identification of five sets of multiple images and measurements of the spatially-resolved stellar kinematics of the BGG, we conduct a detailed analysis of the multi-scale mass distribution using various modeling approaches, both in the single and multiple lens-plane scenarios. Our best-fit mass models reproduce the positions…
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Taxonomy
TopicsGalaxies: Formation, Evolution, Phenomena · Astronomy and Astrophysical Research · Adaptive optics and wavefront sensing
