Skip to main navigation Skip to search Skip to main content

Tokamak Energy’s pre-concept design for a fusion power plant: an overview of ST-E1

  • J. Willis
  • , S. A.M. McNamara
  • , E. N.J. Maartensson
  • , J. Astbury
  • , E. Yildirim
  • , N. Hinton
  • , C. L. Wilson
  • , X. Zhang
  • , J. W. Berkery
  • , L. Baylor
  • , M. Shimada
  • , H. Flynn
  • , A. O. Nelson
  • , S. Abouelazayem
  • , A. Alieva
  • , T. Anderson
  • , J. Benayas
  • , L. Black
  • , M. Borscz
  • , M. Bristow
  • S. Brown, P. Bunting, A. Burchill, K. Chandrasekhar, P. Cheema, O. Danisworo, A. Dnestrovskii, A. V. Dudkovskaia, J. England, J. Fowler, V. Godhani, E. Guise, S. Irukuvarghula, D. James, F. Janky, G. S. Kamal, J. Kang, M. Kruip, A. Kumar, V. Y.S. Lee, S. M. Levine, J. Lima, N. A. Lopez, I. Loughran, F. Malinowski, C. Marsden, L. Mateescu, A. F.P. McAdam, S. Y. Medvedev, M. Michalopoulou, M. K.E. Mohamed, J. Naish, G. Naylor, D. O’Dea, J. Pickles, R. Pocock, M. Robinson, M. Romanelli, S. Romanelli, A. Scarabosio, M. Scarpari, A. Scott, A. Shone, A. Sladkomedova, A. Soldatova, T. Srawley, J. Stirling, G. Stoneham, R. Suhardjo, Y. Takase, J. Taylor, S. Terry, R. Thwaites, J. Trueba, B. van Nugteren, J. Varje, E. Vekshina, B. Vincent, A. Vorobev, A. L. Washington, N. Welch, A. Whitehead, M. Whitfield, E. Wooldridge, M. Ginsberg

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

Climate change and rapidly rising energy demand, driven in part by artificial intelligence and data-centre growth, create an urgent need for stable, low-carbon, and abundant power. Fusion is a promising long-term solution, yet its commercialisation faces a fundamental paradox in today’s investment environment: pilot plants are essential to de-risk physics, engineering, and operations, but their limited lifetime energy output and high upfront costs make them difficult to finance. This paper presents Tokamak Energy’s response: ST-E1, a pre-concept design for a low-aspect-ratio tokamak power plant engineered specifically to overcome this challenge. ST-E1 is designed from the outset for phased operation—pilot and commercial phases, with an upgrade phase in between—with emphasis on commercial viability, maintainability, nuclear engineering, modularity, and upgradability. A key design principle is the deliberate separation of long-lived assets, such as the magnet cage and vacuum vessel, from replaceable in-vessel systems. This provides an attractive and credible investment approach to generate operational data and de-risk key technologies while preserving most capital-intensive assets for later commercial phases. The architecture supports continuous optimisation toward high net electric power (targeting 800–1000 MW net electric), a normalised capital expenditure of $ 12–14k/kW of net electric power, and high availability (targeting (Formula presented) (Formula presented) ). A tokamak core with a 5 m major radius, aspect ratio of 2.3, and on-plasma axis toroidal field of 5.25 T was selected to meet these objectives. This paper summarises the ST-E1 design philosophy, principal features, and development methodology. It introduces a Focus Collection of 11 papers detailing the pre-concept design of the entire tokamak and corresponding plant.

Original languageEnglish
Article number086001
JournalNuclear Fusion
Volume66
Issue number8
Early online dateJul 2026
DOIs
StateE-pub ahead of print - Jul 2026

Keywords

  • fusion power plant
  • ST-E1
  • Tokamak Energy

Fingerprint

Dive into the research topics of 'Tokamak Energy’s pre-concept design for a fusion power plant: an overview of ST-E1'. Together they form a unique fingerprint.

Cite this