UK's Tokamak Energy completes Demo4 fusion high-temperature superconducting magnet system testing
en.Wedoany.com Reported - On September 9, 2026, UK-based Tokamak Energy announced the completion of a 14-month testing campaign for its Demo4 fusion magnet system, validating the company's capabilities in the design, construction, integration, and operation of complete high-temperature superconducting (HTS) magnet systems.

The technical experience gained from Demo4 testing is now being applied to the collaboration between Tokamak Energy and UK Fusion Energy (UKFE), supporting the development of HTS magnet systems for the Spherical Tokamak for Energy Production (STEP) fusion program. The results are also relevant to commercial HTS applications beyond fusion and were presented this week at the Applied Superconductivity Conference (ASC 2026) in Pittsburgh, USA.
During testing, the engineering team raised Demo4's peak magnetic field to 13.7 tesla, operating the toroidal field coils at a current of 5,600 amperes, and cycled the system across an operating temperature range from 77 kelvin down to 17 kelvin. The system simultaneously withstood transverse mechanical stresses of 150 megapascals, approximately 1,500 times atmospheric pressure.
Demo4 employs a spherical tokamak configuration relevant to fusion applications, accumulating approximately 10,000 hours of operation across various energization states, including extended periods of high-field operation. Testing also included multiple forced discharges and high-current discharges at fields up to 12.5 tesla to verify system stability under fault conditions.
Warrick Matthews, Chief Executive Officer of Tokamak Energy, stated that Demo4 represents a significant technical and commercial milestone, demonstrating the company's ability to design, build, and operate complete HTS magnet systems. The system's durability testing provided critical data showing the robustness of its HTS design, which is of significant importance for industrial applications of magnets and power systems.
Liam Brennan, Head of TE Magnetics, Tokamak Energy's HTS business unit, stated that HTS magnet design is critical to the performance and economics of fusion power plants. The Demo4 experiment demonstrated that the company's integrated magnet system can operate in a demanding configuration close to fusion application requirements, and the experience gained has been applied to UK Fusion Energy's STEP program.
Demo4 is a complete HTS fusion magnet system that simultaneously validates magnetic field strength and angle, current density, operating temperature, and mechanical loads within a single integrated device. Testing covered not only the magnet bodies themselves but also the cryogenic systems, magnet power supply systems, instrumentation, and control systems — the critical elements supporting the coordinated operation of multiple magnets.
The system comprises 44 HTS coils arranged in a spherical tokamak configuration. This includes 14 toroidal field limbs, each consisting of two partially insulated HTS coils, plus 2 poloidal field coils, each comprising 8 fully insulated HTS coils. The system is cooled using pressurized helium at operating pressures of up to 20 bar, with over 600 sensors monitoring parameters such as voltage, magnetic field, temperature, and stress.
Tokamak Energy stated that the data collected during this round of experiments will continue to be used to validate and improve its models and control software, thereby enhancing its ability to predict HTS system performance and supporting the design of robust, reliable magnet systems in the future.
Test results showed that HTS components performed as expected at magnetic fields up to 13.7 tesla, with critical current characteristics verified. Across the temperature range from 77 kelvin to 17 kelvin, the system's critical surface mapping performance was further confirmed. The reliability of more than 90 HTS joints was also verified, with joint resistances meeting expectations and maintaining stable current transmission throughout the testing campaign.
Testing also confirmed that HTS materials exhibit good thermal stability, with early quench detection and active cooling proving effective means of avoiding quench events. During failure testing and forced discharges at 12.5 tesla and high current conditions, no hot spots or performance degradation were observed. In terms of mechanical performance, the system was validated under 150 megapascals of transverse compressive stress, contributing to a deeper understanding of wound coil behavior.
Furthermore, Tokamak Energy stated that its HTS magnet design has been verified to withstand the effects of thermal cycling. Full-system coordinated operation was achieved across the magnets, power supplies, cryogenic systems, control systems, and quench protection devices, and the interactions between HTS current leads and between toroidal field coils and poloidal field coils were also validated through testing.
Tokamak Energy is the magnet system partner for the UK government's STEP fusion program. Leveraging its HTS magnet manufacturing and design capabilities, the company has been awarded a contract by UK Fusion Energy valued at £70 million, running through March 2029. Experience from Demo4 will be applied to STEP model coil testing and research into power plant-scale HTS magnet systems.
Tokamak Energy is also a member of the UK's Infinity Fusion Alliance, which includes Type One Energy and AECOM, advancing the development of commercial UK fusion power plants with support from Barclays Bank.
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