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Experimental and numerical investigation of suprathermal electron dynamics using vertical electron cyclotron emission
KTH, School of Electrical Engineering and Computer Science (EECS), Electromagnetics and Plasma Physics.ORCID iD: 0009-0000-6127-9787
KTH, School of Electrical Engineering and Computer Science (EECS), Electromagnetics and Plasma Physics.ORCID iD: 0000-0003-3994-8977
Ecole Polytechnique Fédérale de Lausanne (EPFL), Swiss Plasma Center (SPC), CH-1015 Lausanne, Switzerland.ORCID iD: 0000-0003-0220-2653
Ecole Polytechnique Fédérale de Lausanne (EPFL), Swiss Plasma Center (SPC), CH-1015 Lausanne, Switzerland.ORCID iD: 0000-0003-1185-8021
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2026 (English)In: Plasma Physics and Controlled Fusion, ISSN 0741-3335, E-ISSN 1361-6587, Vol. 68, no 1, p. 015029-015029Article in journal (Refereed) Published
Abstract [en]

The Tokamak à configuration variable (TCV) is equipped with an advanced set of diagnostics for studying suprathermal electron dynamics. Among these, the vertical electron cyclotron emission (VECE) diagnostic offers valuable insights into the electron energy distribution by measuring electron cyclotron emission (ECE) along a vertical line-of-sight. However, reconstructing the electron distribution from ECE measurements is inherently challenging due to harmonic overlap and thermal radiation noise. A more practical approach leverages forward modelling of ECE based on kinetic simulations. To this end, we introduce Yoda, a novel synthetic ECE diagnostic framework that simulates emission and (re)absorption of electron cyclotron (EC) radiation for arbitrary electron distributions and antenna geometries. The framework is validated against the well-established synthetic ECE code Spece, using an ohmic TCV discharge as a reference case. In this study, the 3D bounce-averaged Fokker–Planck code Luke is used to model electron distributions in two EC current drive experiments. The synthetic spectra generated using the combined Luke-Yoda framework successfully reproduce the main features of the experimental VECE measurements in both simulated discharges. The combination of kinetic and synthetic ECE simulations allow the identification of the features in the electron distribution function which give rise to certain signatures in the VECE signal.

Place, publisher, year, edition, pages
IOP Publishing , 2026. Vol. 68, no 1, p. 015029-015029
National Category
Fusion, Plasma and Space Physics
Identifiers
URN: urn:nbn:se:kth:diva-382173DOI: 10.1088/1361-6587/ae3344ISI: 001668077700001Scopus ID: 2-s2.0-105033450576OAI: oai:DiVA.org:kth-382173DiVA, id: diva2:2062033
Funder
Swedish Research Council, 2024-04879
Note

QC 20260525

Available from: 2026-05-25 Created: 2026-05-25 Last updated: 2026-05-25Bibliographically approved
In thesis
1. Modelling runaway electron generation in tokamaks
Open this publication in new window or tab >>Modelling runaway electron generation in tokamaks
2026 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

Tokamak disruptions can convert a large fraction of the plasma current into a beam of relativistic runaway electrons. In a reactor-scale device such as ITER,a runaway electron beam could carry several megaamperes and, if left uncontrolled, could cause severe damage to plasma-facing components. Predicting whether a given disruption scenario leads to a dangerous runaway beam, and designing injection schemes that prevent it, requires models that capture the interplay between material injection, rapid plasma cooling, electric field evolution, and the various mechanisms by which runaway electrons are born,multiply, and are lost. This thesis addresses runaway electron physics from seed formation to disruption mitigation through numerical modelling.

A synthetic electron cyclotron emission (ECE) framework is developed and applied to vertical ECE measurements on the TCV tokamak, combining Fokker-Planck calculations of the electron distribution function with ray tracing and radiative transfer. The analysis demonstrates that vertical ECE can resolve the energy-dependent dynamics of suprathermal electrons in the 20–100 keV range, providing constraints on the nascent runaway seed that are difficult to obtain with conventional diagnostics.

The disruption simulation framework Dream is then extended with several physics models relevant to ITER: runaway electron losses from vertical plasma displacement, cross-field drift of pellet ablation material, stochasticity driven current-profile relaxation, and an updated Compton scattering source for the ITER first wall. These are applied to a systematic study of shattered pellet injection scenarios in ITER showing that avoiding a multi-megaampere runaway beam depends sensitively on the thermal quench timescale, the injected material composition, and the competition between runaway multiplication and scrape-off losses. Finally, a viable theoretical pathway that limits the runaway current to tolerable levels even in the presence of nuclear runaway sources is identified.

Place, publisher, year, edition, pages
Stockholm: KTH Royal Institute of Technology, 2026. p. ix, 71
Series
TRITA-EECS-AVL ; 2026:59
Keywords
Nuclear fusion, Tokamak, Runaway electrons, Disruptions
National Category
Fusion, Plasma and Space Physics
Research subject
Electrical Engineering
Identifiers
urn:nbn:se:kth:diva-382158 (URN)978-91-8106-637-1 (ISBN)
Presentation
2026-06-12, H1, Teknikringen 33, Stockholm, 10:00 (English)
Opponent
Supervisors
Note

QC 20260525

Available from: 2026-05-25 Created: 2026-05-22 Last updated: 2026-06-16Bibliographically approved

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Votta, LorenzoHoppe, Mathias

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