Completed Clean Energy Physics & Astronomy

UK Fusion Programme

In plain English

AI plain-English summary

The UK is building the science to make fusion power—the process that fuels the Sun—work inside a machine on Earth. If successful, fusion would provide a near-limitless source of safe, low-carbon energy, addressing the fundamental challenge of generating reliable power without greenhouse gas emissions or long-lived radioactive waste. The research focuses on two experimental tokamaks at Culham Science Centre: MAST, a spherical tokamak that could lead to more compact reactor designs, and the Joint European Torus (JET). Experimental programmes on these machines aim to resolve key physics issues for ITER, the first fusion device designed to achieve energy gain and sustained burn. A theory and modelling group supports the experiments, develops fusion materials, and studies conceptual power stations. The UK is also securing roles in providing specialist diagnostic and heating systems for ITER. This is mission-oriented fundamental science: it seeks to prove the physics and engineering needed for a practical fusion reactor. If it succeeds, fusion could transform global energy grids, replacing fossil fuels and complementing renewables with steady, dense power.

View original technical description
Fusion is the energy-releasing process that powers the sun and other stars. If it can be harnessed economically on earth it would be an essentially limitless source of safe, environmentally responsible energy. Fusion energy is therefore strongly mission-orientated. The most promising method uses strong magnetic fields in a tokamak configuration to allow a high temperature deuterium-tritium plasma to be generated while minimising contact with the surrounding material surfaces.The UK contributes to fusion research in two ways: (i) through the UK's own programme focused on the spherical tokamak experiment MAST, and (ii) by contributing to the Joint European Torus (JET) programme. The MAST and JET facilities are situated at Culham Science Centre. International co-operation is strong with the focus on the International Tokamak Experimental Reactor (ITER), which will be the first fusion device to achieve energy gain and sustained burn.Experimental programmes on the MAST and JET tokamaks are performed to help resolve and refine understanding of key physics issues for ITER. In addition, experimental programmes on MAST focus on testing the potential of the spherical tokamak as a more compact option for future fusion devices. A strong theory and modelling group supports the experimental programmes and contributes to the research and development of fusion materials and to studies of conceptual fusion power stations. Expansion of the research and development of ITER specialist (i.e. diagnostic and heating) systems, focuses on securing major roles for the UK in the provision of two or three of these large complex projects.The results of the research are presented in reports and publications, and at conferences, expert groups and specialist committees. Collaborations with researchers in other areas of science and technologies are pursued strongly, where the research overlaps with fusion R&D.

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Researchers

Christopher Llewellyn-Smith (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

UK Fusion Programme 2008-2010
UK Magnetic Fusion Research Programme
Magnetic Research Fusion Programme 2017-2022
Magnetic Research Fusion Programme 2019-2022
UKAEA / EPSRC Fusion Grant 2022/27

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.