Overview of the MAST Upgrade physics programme: testing novel concepts at low aspect ratio to inform future devices

Nuclear Fusion IOP Publishing 66:11 (2026)

Authors:

JR Harrison, A Aboutaleb, M Aljunid, SY Allan, R Allan, A Alli, H Anand, Y Andrew, LC Appel, A Ash, J Ashton, F Auriemma, O Bachmann, S Bakes, P Balazs, O Bardsley, M Barnes, B Barrett, D Baver, C Beckley, J Bennett, J Bentley, J Berkery, M Bernert, N Bertelli, P Bilkova, S Blackmore, A Bock, W Boeglin, P Bohm, J Booth, A Bosnjak, C Bowman, J Bradley, L Bramucci, D Brida, M Brix, PK Browning, D Brunetti, P Bryant, J Bryant, J Buchanan, M Bull, M Bulman, N Bulmer, D Burke, P Cahill, P Cano-Megías, M Carpita, A Carruthers, L Casali, A Cassidy, F Causa, M Cecconello, A Celora, M Cha, B Chamberlain, B Chapman, B Chapman-Oplopoiou, R Chazal, X Chen, J Clark, M Clark, T Clayton, K Collie, D Collishaw-Schepman, JW Connor, M Coy, S Cramp, N Crocker, D Cruse, G Cunningham, M Czarski, I Cziegler, Y Damizia, P Davies, K Davies, I Day, E Delabie, GL Derks, S Dixon, J Dobrashian, M Dreval, X Du, H Dudding, D Dunai, M Dunne, F Ebrahimi, J Edmond, J Edwards, H El-Haroun, S Elmore, Y Enters, M Faitsch, F Federici, N Fedorczak, F Felici, N Ferraro, AR Field, P Figueiredo, I FitzGerald, M Fitzgerald, R Fitzpatrick, C Fitzpatrick, S Frankel, L Frassinetti, D Frattolillo, S Freethy, W Fuller, R Futtersack, S Gabriellini, K Gage, J Galdon, J Galdon-Quiroga, M Gambrioli, C Garner, L Garzotti, TE Gheorghiu, KJ Gibson, C Gibson, E Giovannozzi, C Giroud, J Goatley, A Goodyear, M Gorelenkova, S Gosden, G Grassler, JP Graves, D Greenhouse, R Griffiths, VH Hall-Chen, CJ Ham, E Harrington, R Harrison, A Haupt, J Hawes, S Hegedus, SS Henderson, C Heo, C Hickling, M Hill, B Hnat, C Hogben, B Honey, L Howlett, Z Huang, A Hudoba, J Hughes, R Hussain, K Imada, P Ivanov, A Jackson, P Jacquet, F Jaulmes, P Jepson, T Jones, P Jones, M Juvonen, V Kachkanov, B Kandan, I Katramados, S Kaye, YO Kazakov, D Keeling, D Kennedy, A Kenny, H-T Kim, D King, R King, A King, V Kiptily, A Kirjasuo, A Kirk, A Kit, A Kleiner, M Knolker, S Kobussen, M Kochan, L Kogan, B Kool, D Kos, M Kotschenreuther, M Lampert, A Lawson, K Lawson, K-W Lee, G Lee, J Lee, M Lees, S Leigh, AW Leonard, G Liddiard, B Lipschultz, E Litherland-Smith, YQ Liu, BA Lomanowski, J Lombardo, N Lonigro, J Lore, J Lovell, R Lucock, T Luong, A Lvovskiy, J Macdonald, T Macwan, S Mahajan, F Maiden, R Maingi, C Man-Friel, F Mansfield, M Markl, S Marsden, R Martin, R Mathew, R Maurizio, U Mazzarese, S Mazzi, R McAdams, G McArdle, J McBride, K McClements, J McClenaghan, D McConville, K McKay, C McKnight, P McKnight, A McLean, BF McMillan, A McShee, J Measures, N Mehay, S Menmuir, HF Meyer, CA Michael, F Militello, IG Miron, R Mishra, J Mitchell, D Moiraf, P Monaghan, R Mooney, N Mooring, R Morales Gomes, D Morbey, S Mordijck, C Morgan, J Morris, D Moulton, S Munaretto, A Munasinghe, A Muraro, O Myatra, Y-S Na, TF Neiser, AO Nelson, SL Newton, M Nicassio, MG O’Mullane, C Olde, HJ Oliver, P Ollus, J Omotani, M Ono, FP Orsitto, R Osawa, N Osborne, T Osborne, R Otin, E Ozturk, F Palermo, A Pankin, I Paradela Pérez, J Parisi, E Parr, B Parry, BS Patel, E Pawelec, D Payne, C Paz-Soldan, A Phelps, L Piron, C Piron, G Pokol, R Preece, M Price, B Pritchard, R Proudfoot, G Pucella, T Pumfrett, D-Y Pyo, H Reimerdes, T Rhodes, E Ribeiro, D Rigamonti, J Riquezes, JF Rivero-Rodriguez, J Roberts, M Robson, K Ronald, E Rose, D Ryan, P Ryan, S Saarelma, S Sabbagh, A Salmi, R Sarwar, P Saunders, O Sauter, R Scannell, R Sealey, R Seath, S Sharapov, R Sharma, H Sheikh, S Shiraiwa, B Sieglin, SA Silburn, M Simmonds, J Simpson, A Sladkomedova, J Smith, P Smith, M Sos, VA Soukhanovskii, D Speirs, C Srinivasan, G Staebler, R Stephen, P Stevenson, J Stobbs, C Stroud, H Sun, H Sun, G Szepesi, DM Takács, T Tala, C Tame, C Theiler, B Thomas, S Thomas, S Thomas, N Thomas-Davies, AJ Thornton, A Tilley, I Tirkova, M Tobin, E Tomasina, A Tonel, P Tonner, A Tookey, G Tvalashvili, M Vallar, M Valovic, RGL Vann, L Velarde, L Velarde, K Verhaegh, E Viezzer, C Vincent, M Walsh, T Walsh, M Warr, S Wiesen, TA Wijkamp, D Wilkins, J Willis, T Wilson, HR Wilson, N Winston, G Withenshaw, H Wong, M Wood, R Worrall, Q Xia, G Xia, L Xiang, G Xiang, T Xu, JH Yu, V Zamkovska, M Zerbini, VK Zotta, M Zurita, LE di Grazia

Abstract:

The research programme performed on the Mega Amp Spherical Tokamak (MAST) Upgrade experiment has made significant advances in developing the physics understanding of low aspect ratio tokamaks in support of the operation of ITER and design of fusion powerplants. High performance plasma scenarios have been developed to facilitate a broad programme of experiments, in which confinement is constrained by the presence of m/n = 2/1 modes that cause substantial losses of fast ions. The onset of these modes coincides with the q = 2 surface residing in a local minimum in the toroidal current density profile. The maximum electron temperature at the pedestal top, Te,ped is limited with gas fuelling to ∼350 eV to maintain regular ELMs; higher Te,ped results in a transition to a non-stationary ELM-free regime. The operational space of spherical tokamaks has been expanded into small and ELM-free regimes. Strong shaping of the last closed flux surface can induce a transition from large to small ELMs, and ELM suppression with resonant magnetic perturbations has been observed for the first time in a low aspect ratio tokamak. Negative triangularity shaping has induced a transition from ELMy H-mode to a high-performance L-mode regime for the first time in a low aspect ratio tokamak. In studies of fast ion confinement, losses of fast particles due to Global Alfvén Eigenmodes have been identified. Interactions between fast ions generated by off-axis neutral beam injection and thermal neutrals can result in significant losses of fast ions. Experiments with on- and off-axis neutral beam injection exhibit a flux pumping mechanism, where the central safety factor is held to ∼1 in the absence of sawteeth. In studies of pedestal physics, it has been found that elevated main chamber neutral pressures result in an increase in the electron density and reduction in the temperature at the pedestal top. Advances in understanding plasma exhaust include the integration of a high-performance plasma core with detached outer divertors in the X-point target configuration. A newly commissioned lower divertor cryopump reduces the lower divertor neutral pressure by up to 50%, with minimal effect on the main chamber or upper divertor. New measurements and SOLPS-ITER simulations emphasise the importance of plasma–neutral interactions on divertor detachment in the conditions accessible in experiments. Real-time control of the ionisation front location in both divertor chambers independently has been demonstrated in double null experiments, enabled by the tightly baffled divertor chambers.

Latent Thermal Instability

The Astrophysical Journal Letters American Astronomical Society 1008:1 (2026) l20

Authors:

Prakriti P Choudhury, Archie FA Bott

Abstract:

Multiscale temperature fluctuations are abundant in the intracluster medium (ICM) outside of galaxy cluster cores (∼100 kpc). Their origin is often attributed to turbulent stirring by subhalos or accreting baryons crossing the virial radius. However, their apparent resistance to mixing and thermal conduction in a collisional medium has not been explained. We propose a new mechanism by which steady-state temperature fluctuations can form and persist outside the cluster core. Local thermal instability, or Field instability, is used to explain filamentary condensates in cluster cores but is usually dismissed outside them because thermal conduction should suppress instability. In weakly collisional or collisionless plasmas, however, thermal conduction can be anomalously suppressed by heat-flux-driven plasma instabilities triggered in the presence of a local magnetic field, leading to two effects: (i) condensates form in a new parameter regime that overlaps with conditions outside the core, and (ii) condensates reach a steady state as in the hydrodynamic limit. This extends the regime of instability-driven fluctuations to over ≳50% (depending on hot plasma temperature) of the cluster. We use one-dimensional hydrodynamic simulations of condensates to test our analytical ideas.

On the transition to large fluxes and access to second stability in gyrokinetic simulations of electromagnetic turbulence in STEP

Nuclear Fusion IOP Publishing 66:9 (2026) 096041

Authors:

D Kennedy, Y Zhang, T Adkins, PG Ivanov, FJ Casson, HG Dudding, BS Patel, CM Roach, HR Wilson

Abstract:

This work investigates the nonlinear transition to large heat fluxes observed in local gyrokinetic (GK) simulations of electromagnetic (EM) turbulence in STEP (Meyer 2024 Phil. Trans. R. Soc. 382 20230406). Using the stress-balance framework of (Zhang et al 2026 J. Plasma Phys.) we confirm that the onset of extreme transport correlates with a critical value of q2βe, where q is the safety factor and βe is the ratio of electron thermal pressure to magnetic pressure, and relate this to a limit on the poloidal beta βpol. Crucially, this critical value lies below any relevant linear stability limit in the (q,βe) space (e.g. the onset of ideal or kinetic ballooning modes). Using an extensive set of nonlinear GK simulations, we demonstrate that the transition to large fluxes in STEP is governed by a balance between the electrostatic and magnetic-flutter stresses. We argue, and also show numerically, that larger-major-radius tokamaks reach the EM non-zonal regime at lower βe, making this MHD-controlled saturation limit more accessible in reactor-scale devices than in small spherical tokamaks. We also demonstrate that access to a second-stable regime enables re-saturation at larger values of β′. We further show that the ideal ballooning mode (IBM) threshold serves as a useful proxy for delineating this second-stable region and also tracks the onset of large fluxes. These results provide a predictive framework for identifying no-go zone predictions from local GKs and offer new insight into the EM saturation physics relevant to STEP and other high- βe devices.

Stellar discs and intermediate-mass black holes in galactic nuclei – I. Fragmenting the disc in an isotropic stellar potential

Monthly Notices of the Royal Astronomical Society Oxford University Press (OUP) (2026) stag1637

Authors:

Taras Panamarev, Xiang Zou, Bence Kocsis

Abstract:

Abstract The origin of the complex orbital structure of young massive stars at the Galactic centre remains an open question. If these stars formed in a single episode from a gaseous accretion disc, they may initially have constituted a single, coherently rotating stellar disc. We investigate whether perturbations from an unseen intermediate-mass black hole (IMBH) could fragment and/or disrupt such a disc into the multiple orbital components observed today. First, we derive a theoretical criterion for when and where the IMBH’s torque overcomes the disc’s self-torque and tears it apart. We then test this picture with direct N-body simulations of a stellar disc interacting with an inclined IMBH around a central supermassive black hole. We find that the outcome depends strongly on the IMBH’s orbit and mass. A prograde IMBH rapidly aligns with the stellar disc, while a massive retrograde IMBH (m• ≃ 0.67 Md) anti-aligns relative to the radially overlapping stars and efficiently fragments the original disc into three components in angular-momentum space: an inner disc, a misaligned overlapping region, and an unperturbed outer disc. The IMBH also excites eccentricities in the overlapping region, driving stars away from initially circular orbits. These features emerge for an IMBH mass of 2000 ⊙ and a disc mass of 3000 ⊙ within 10–20 Myr, a timescale comparable to the age of the young Galactic centre stellar population, and provide a plausible explanation for the observed multiple orbital planes, warped geometry, and broad eccentricity distribution.

Statistical Study of Betatron and Fermi Electron Acceleration at Dipolarization Fronts

Geophysical Research Letters American Geophysical Union (AGU) 53:15 (2026) e2026GL122885

Authors:

A Kolokotronis, DB Graham, Yu V Khotyaintsev, C Norgren, K Steinvall, L Richard

Abstract:

Abstract Magnetic reconnection jets in Earth's magnetotail are regions of electron heating and acceleration. They are often associated with dipolarization fronts (DFs), which are characterized by sharp increases in the northward magnetic field component . Electrons can be accelerated at DFs mainly through the betatron and Fermi mechanisms. We perform a statistical study of betatron and Fermi electron rate of energy change at Earthward‐propagating DFs observed by the Magnetospheric Multiscale (MMS) spacecraft. Our results show that betatron acceleration is dominant ahead of DFs, where suprathermal electron fluxes perpendicular to the magnetic field are detected. Up to ion inertial lengths inside the outflow, Fermi acceleration acts on the low‐density electron population, potentially driving them to high energies (∼100 ). Spatially in the magnetotail, betatron acceleration is statistically larger near the most probable X‐line location, while Fermi‐dominated events are observed closer to the Earth.