Our universe is a near-uniform soup of particles that, over billions of years, has transformed into a vast cosmic web of galaxies, clusters, and voids—and supercomputer simulations are now detailed enough to reconstruct that entire history. This research tackles a fundamental gap in our understanding: how did the tiny ripples imprinted in the universe’s first 400,000 years grow, under the pull of dark matter and dark energy, into the galaxies and larger structures we see today? The standard Lambda-CDM model explains the broad picture, but many details remain untested. The team, part of the UK-led Virgo consortium, will run simulations that track dark matter, gas, and stars across cosmic time, then compare those simulations directly with data from the Pan-STARRS survey. This is fundamental science with no immediate practical application. But similar work—such as the development of algorithms for processing astronomical images—has previously led to advances in medical imaging and data analysis. A deeper understanding of how structure forms could also sharpen our models of gravity and particle physics, with potential long-term implications for technologies that rely on precise timing or navigation.
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The last twenty years have seen the emergence of a standard model for the geometry and material content of our Universe, as well as for the origin and evolution of all structure within it. According to this 'Lambda-CDM' model, we live in a universe with a flat geometry where at least two thirds of all mass-energy is now in the form of a dark energy field which is causing the universe to expand at an ever increasing rate. About a quarter is dark matter, most probably a new weakly interacting elementary particle yet to be detected directly on Earth. Only about 5 percent is ordinary, or baryonic, matter of which only about a tenth is in stars today and the rest resides mostly in intergalactic gas. Structure was seeded by quantum fluctuations imprinted in the mass density of the universe at the very earliest instants of the Big Bang. These produced weak sound waves in the near-uniform primordial plasma that left observable imprints on the heat left over from the Big Bang, emitted when the universe was only 400,000 years old. These tiny ripples, mapped by imaging the cosmic microwave background radiation, grew into the full richness of structure we see around us today. It is this transformation from a near-uniform primordial soup to a cosmic web of galaxies, clusters and larger structures that is the focus of this application. Gravity, mostly due to dark matter, amplifies the tiny primordial ripples, causing lumps of dark matter and gas to stop expanding with the universe and collapse to form today's cosmic structures. This process is complex, but it can be calculated using computer simulations. For a given a set of assumptions regarding the generation of inhomogeneities in the early universe, the identity of the dark matter, and the values of the cosmological parameters, simulations can now follow the formation history of cosmic structure, tracking the evolution of dark matter, gas and stars, in considerable detail. Supercomputer simulations are a large part of our research programme and much of this work takes place within the 'Virgo consortium', a UK-led international collaboration which is generally recognized as the world leader in the subject. Over the past 25 years, the Virgo consortium and precursor collaborations have played a central role in defining the modern approach to physical cosmology and establishing Lambda-CDM as the standard model. Our programme has six interrelated themes: (1) the dark matter universe, (2) the gaseous universe, (3) the cosmic dawn, (4) the universe of galaxies, (5) active galactic nuclei and black holes, and (6) the universe on Gigaparsec scales. Our programme thus targets the first and fifth of the nine key science questions in the STFC roadmap: 'What is the universe made of and how does it evolve?' 'How do galaxies, stars and planets form and evolve?' Our research has three broad goals. The first is to understand the formation of structures in the Universe, from galaxies and quasars to superclusters and, through this, establish the nature of the dark matter and the dark energy, and explore the Lambda-CDM cosmological model in as yet untested regimes. The second goal is to provide a bridge between theory and observations. Simulations are the best, often the only, means to formulate and test observable predictions from cosmological and astrophysical theory. Our third goal is to extract cosmological information about the real universe by analysing galaxy surveys in tandem with our simulations. We are fortunate to have been invited to join the international Pan-STARRS project, the first of a new generation of large photometric surveys which targets an astonishing breath of science topics, from potential 'killer' asteroids in the solar system, to the large-scale structure of the Universe. We are leading one of the 12 key projects in Pan-STARSS, the one on the large-scale structure.
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