TY - JOUR
T1 - Divertor shaping with neutral baffling as a solution to the tokamak power exhaust challenge
AU - The EUROfusion Tokamak Exploitation Team
AU - the MAST Upgrade Team
AU - Verhaegh, Kevin
AU - Harrison, James
AU - Moulton, David
AU - Lipschultz, Bruce
AU - Lonigro, Nicola
AU - Osborne, Nick
AU - Ryan, Peter
AU - Theiler, Christian
AU - Wijkamp, Tijs
AU - Brida, Dominik
AU - Cowley, Cyd
AU - Derks, Gijs
AU - Doyle, Rhys
AU - Federici, Fabio
AU - Kool, Bob
AU - Février, Olivier
AU - Hakola, Antti
AU - Henderson, Stuart
AU - Reimerdes, Holger
AU - Thornton, Andrew
AU - Vianello, Nicola
AU - Wischmeier, Marco
AU - Xiang, Lingyan
AU - Zychor, I.
AU - Zurita, M.
AU - Zuin, M.
AU - Zou, X.
AU - Zotta, V. K.
AU - Zohar, A.
AU - Zlobinski, M.
AU - Zimmermann, B.
AU - Zestanakis, P.
AU - Zerbini, M.
AU - Zebrowski, J.
AU - Zayachuk, Y.
AU - Zarzoso, D.
AU - Zanca, P.
AU - Zakharov, L.
AU - Zadvitskiy, G.
AU - Zaar, B.
AU - Wauters, T.
AU - Verdoolaege, G.
AU - Van Eester, D.
AU - Ragona, R.
AU - Ongena, J.
AU - Lerche, E.
AU - Kazakov, Y.
AU - Durodie, F.
AU - Crombe, K.
AU - Buermans, J.
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/12
Y1 - 2025/12
N2 - Exhausting power from the hot fusion core to the plasma-facing components is one fusion energy’s biggest challenges. The MAST Upgrade tokamak uniquely integrates strong containment of neutrals within the exhaust area (divertor) with extreme divertor shaping capability. By systematically altering the divertor shape, this study shows the strongest evidence to date to our knowledge that long-legged divertors with a high magnetic field gradient (total flux expansion) deliver key power exhaust benefits without adversely impacting the hot fusion core. These benefits are already achieved with relatively modest geometry adjustments that are more feasible to integrate in reactor designs. Benefits include reduced target heat loads and improved access to, and stability of, a neutral gas buffer that ‘shields’ the target and enhances power exhaust (detachment). Analysis and model comparisons shows these benefits are obtained by combining multiple shaping aspects: long-legged divertors have expanded plasma-neutral interaction volume that drive reductions in particle and power loads, while total flux expansion enhances detachment access and stability. Containing the neutrals in the exhaust area with physical structures further augments these shaping benefits. These results demonstrate strategic variation in the divertor geometry and magnetic topology is a potential solution to one of fusion’s power exhaust challenge. (Figure presented.)
AB - Exhausting power from the hot fusion core to the plasma-facing components is one fusion energy’s biggest challenges. The MAST Upgrade tokamak uniquely integrates strong containment of neutrals within the exhaust area (divertor) with extreme divertor shaping capability. By systematically altering the divertor shape, this study shows the strongest evidence to date to our knowledge that long-legged divertors with a high magnetic field gradient (total flux expansion) deliver key power exhaust benefits without adversely impacting the hot fusion core. These benefits are already achieved with relatively modest geometry adjustments that are more feasible to integrate in reactor designs. Benefits include reduced target heat loads and improved access to, and stability of, a neutral gas buffer that ‘shields’ the target and enhances power exhaust (detachment). Analysis and model comparisons shows these benefits are obtained by combining multiple shaping aspects: long-legged divertors have expanded plasma-neutral interaction volume that drive reductions in particle and power loads, while total flux expansion enhances detachment access and stability. Containing the neutrals in the exhaust area with physical structures further augments these shaping benefits. These results demonstrate strategic variation in the divertor geometry and magnetic topology is a potential solution to one of fusion’s power exhaust challenge. (Figure presented.)
UR - https://www.scopus.com/pages/publications/105005841834
U2 - 10.1038/s42005-025-02121-1
DO - 10.1038/s42005-025-02121-1
M3 - Article
AN - SCOPUS:105005841834
SN - 2399-3650
VL - 8
JO - Communications Physics
JF - Communications Physics
IS - 1
M1 - 215
ER -