H2020Individual fellowship2017–2019

ClusterGal · Investigating the mechanisms that shape galaxies in and around massive clusters

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2017-10-01 → 2019-09-30
EU contribution
€177,599
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Investigating the mechanisms that shape galaxies in and around massive clusters

Astronomical observations have revealed that galaxies in clusters — dense associations of hundreds or even thousands of galaxies — are markedly different from their cousins living in a more isolated environment, such as the Milky Way. The colour of cluster galaxies is typically red, rather than blue, they have often ceased forming new stars several billion years ago, and their morphology is mostly round or elliptical, rather than dominated by a thin disk with spiral arms. These differences imply that, somehow, galaxies "know" about the large-scale environment in which they live: their formation and evolution must be markedly different in clusters than in the more typical, less crowded regions of the Universe. However, astronomers have so far only had a sketchy picture of exactly how galaxies interact with their environment, and how this shapes the galaxies that we observe in clusters. Uncovering these interaction mechanisms is an important fundamental science question, for a number of reasons. Our picture of galaxy formation is necessarily incomplete without an understanding of how it works in the extreme environment of galaxy clusters. Furthermore, galaxy groups harbour as much as one third of all galaxies in the Universe, and the processes governing their evolution are thought to be essentially a milder variant of those operating in clusters. Finally, galaxy clusters have emerged as promising “tools” to study fundamental questions of astronomy and cosmology, such as the nature of dark energy and dark matter. To reach the required precision, these measurements require an accurate understanding of the cluster galaxies and their special evolution. The ClusterGal project was therefore set up to shed light on cluster galaxies through a new high-resolution cosmological hydrodynamical simulation suite, Hydrangea. These simulations are based on the successful EAGLE project and specifically target massive galaxy clusters and their large-scale filamentary surroundings at the highest resolution currently achievable on such scales. With this setup, we could investigate the formation and evolution of cluster galaxies in a realistic way. This was done by comparing the simulations to state-of-the-art observations, extracting galaxy histories from the simulations, and comparing to the predictions of simple, intuitive models.

Data: CORDIS, © European Union

Project objective

For decades, astronomers have known that some galaxies are living in dense associations known as “galaxy clusters”, and that many of their properties, e.g. their morphology, colour, and gas content, differ from those of galaxies living in more isolated parts of the Universe (like our Milky Way). However, understanding the physical origin of these differences has so far proved elusive, constituting a major gap in our understanding of galaxy formation.My proposed research will deliver ground-breaking new insight into this long-standing problem, based on detailed analyses of a tailor-made set of hydrodynamical cosmological simulations - the “Hydrangea” suite - that has been completed under my leadership during the last two years. Specifically, I will investigate 1.) the transformation of spiral discs into elliptical galaxies; 2.) the processes by which gas is accreted in the far outskirts of clusters; 3.) the stripping of gas from galaxies and the resulting quenching of star formation after infall into the cluster. Furthermore, I will use the insight gained in addressing these questions to improve simulation codes beyond the current state of the art, in preparation for even more accurate future simulations. This research has become possible only now, as a result of successful efforts to improve and calibrate simulation codes so that they produce realistic galaxies, computers becoming powerful enough for large simulations like Hydrangea, and the availability of multi-epoch, multi-wavelength observational data sets to test the validity of the simulations in detail. The combination of my experience in simulation analysis and the world-leading expertise at my host, Leiden Observatory, in the development of simulation models and observations of the real Universe, provide the ideal setting to make this project a success and equip me with the skills required to lead independent academic research.

Original text from CORDIS.

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Data: CORDIS, © European Union