Completed Physics & Astronomy Computing & AI

The DiRAC 2.5x Facility

In plain English

AI plain-English summary

The UK's ageing DiRAC2 supercomputers—workhorses for theoretical physics since 2012—are at risk of failure and must be replaced to keep cutting-edge research running. This funding buys new hardware at Durham, Edinburgh, and Leicester to prevent a "potentially disastrous" gap in computing power for particle physics, astronomy, and cosmology. Without it, scientists lose the ability to run the massive simulations that test theories against real data from experiments like the Large Hadron Collider and the LIGO gravitational-wave detectors. The work is fundamental science: it asks how the Universe began, what it is made of, and how galaxies form. There is no immediate practical application. But the same kind of computation that models black-hole mergers or quark interactions also drives advances in code optimisation, data mining, and visualisation—skills that feed directly into UK tech and industry. Replacing the hardware now also prototypes capabilities for the next-generation DiRAC3 facility, ensuring the UK remains competitive in a field where theoretical insight increasingly depends on raw computing power.

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Physicists across the astronomy, nuclear and particle physics communities are focussed on understanding how the Universe works at a very fundamental level. The distance scales with which they work vary by 50 orders of magnitude from the smallest distances probed by experiments at the Large Hadron Collider, deep within the atomic nucleus, to the largest scale galaxy clusters discovered out in space. The Science challenges, however, are linked through questions such as: How did the Universe begin and how is it evolving? and What are the fundamental constituents and fabric of the Universe and how do they interact? Progress requires new astronomical observations and experimental data but also new theoretical insights. Theoretical understanding comes increasingly from large-scale computations that allow us to confront the consequences of our theories very accurately with the data or allow us to interrogate the data in detail to extract information that has impact on our theories. These computations test the fastest computers that we have and push the boundaries of technology in this sector. They also provide an excellent environment for training students in state-of-the-art techniques for code optimisation and data mining and visualisation. The DiRAC2 HPC facility has been operating since 2012, providing computing resources for theoretical research in all areas of particle physics, astronomy, cosmology and nuclear physics supported by STFC. It is a highly productive facility, generating more than 250 papers annually in international, peer-reviewed journals. However, the DiRAC2 hardware is now at least 5 years old and is therefore at significant risk of failure. The loss of any one of the DiRAC2 services would have a potentially disastrous impact on the research communities which rely on it to deliver their scientific research. The main purpose of the requested funding for the DiRAC2.5x project is to replace the ageing DiRAC2 hardware at Durham, Edinburgh and Leicester while taking advantage of recent hardware advances to provide some new capabilities (e.g. i/o acceleration using flash storage) as prototypes for the proposed DiRAC3 services. DiRAC2.5x builds on the success of the DiRAC HPC facility and will provide the resources needed to support cutting-edge research during 2018 in all areas of science supported by STFC. While the funding is required to "keep the lights on", the science programme will continue to be world-leading. Examples of the projects which will benefit from this investment include: (i) lattice quantum chromodynamics (QCD) calculations of the properties of fundamental particles from first principles; (ii) improving the potential of experiments at CERN's Large Hadron Collider for discovery of new physics by increasing the accuracy of theoretical predictions for rare processes involving the fundamental constituents of matter known as quarks; (iii) simulations of the merger of pairs of black holes which generate gravitational waves such as those recently discovered by the LIGO consortium; (iv) the most realistic simulations to date of the formation and evolution of galaxies in the Universe; (v) the accretion of gas onto supermassive black holes, the most efficient means of extracting energy from matter and the engine which drives galaxy formation and evolution; (vi) new models of our own Milky Way galaxy calibrated using new data from the European Space Agency's GAIA satellite; (vii) detailed simulations of the interior of the sun and of planetary interiors; (viii) the formation of stars in clusters - for the first time it will be possible to follow the formation of stars many times more massive than the sun.

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Researchers

David Colling (Co-Investigator)James Hetherington (Co-Investigator)Jeremy Yates (Co-Investigator)Mark Wilkinson (Principal Investigator)Philip Kershaw (Co-Investigator)Robin Pinning (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

The DiRAC-2.5y Facility
DiRAC 2.5y - Networks and Data Management
DiRAC: Memory Intensive 2.5y
DiRAC: Memory Intensive 2.5x
DiRAC-2.5 DC - Operations 2017-2020

Original classification

Research Grant

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