Joint deprojection of Sunyaev-Zeldovich and X-ray images of galaxy clusters
S. Ameglio (1,2,3), S. Borgani (1,2,3), E. Pierpaoli (4), K. Dolag (5), ((1) Dipartimento di Astronomia dell'Universita' di Trieste, (2) INFN -, Trieste, (3) INAF - Trieste, (4) University of Southern California, (5), Max-Planck-Institut fur Astrophysik - Garching)

TL;DR
This paper introduces two non-parametric methods for reconstructing the three-dimensional density and temperature profiles of galaxy clusters from tSZ and X-ray maps without relying on spectroscopic data, tested on simulations.
Contribution
It presents novel geometrical and likelihood-based deprojection techniques that account for cluster elongation and gas clumping, improving 3D profile recovery from 2D observations.
Findings
Good overall reconstruction with <10% density overestimate
Intrinsic scatter of about 5% dominated by gas clumping
Biases in temperature profiles depend on cluster elongation
Abstract
We present two non-parametric deprojection methods aimed at recovering the three-dimensional density and temperature profiles of galaxy clusters from spatially resolved thermal Sunyaev-Zeldovich (tSZ) and X-ray surface brightness maps, thus avoiding the use of X-ray spectroscopic data. In both methods, clusters are assumed to be spherically symmetric and modeled with an onion-skin structure. The first method follows a direct geometrical approach. The second method is based on the maximization of a single joint (tSZ and X-ray) likelihood function, which allows one to fit simultaneously the two signals by following a Monte Carlo Markov Chain approach. These techniques are tested against a set of cosmological simulations of clusters, with and without instrumental noise. We project each cluster along the three orthogonal directions defined by the principal axes of the momentum of inertia…
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