Fast-ion phase-space tomography with wave-particle interactions in the ion cyclotron frequency range as prior
Journal article, 2025

The fast-ion distribution function in fusion plasmas can be inferred by inverting Doppler-shifted measurements from fast-ion diagnostics. The full fast-ion distribution function can be parametrised by three constants of motion with the addition of a binary index. However, with a limited number of measurements, cogent prior information must be added to regularise the inverse problem, enabling the reconstruction of the distribution function. In this paper, we demonstrate how to incorporate wave-particle interactions in the ion cyclotron range of frequencies (ICRFs) as prior information with the future ITER tokamak as a test case. We find that the addition of ICRF physics as prior information improves the reconstruction of a test ICRF-heated fast-ion distribution function in ITER using synthetic data based on the planned collective Thomson scattering sightlines and the planned gamma-ray spectroscopy sightlines. The addition of such prior information is beneficial in the case of a limited phase-space coverage of fast-ion diagnostics.

fast ions

tomography

prior information

wave-particle interactions

Author

M. Rud

Technical University of Denmark (DTU)

Hans Eriksson

Chalmers, Industrial and Materials Science, Production Systems

J. Eriksson

Uppsala University

P. C. Hansen

Technical University of Denmark (DTU)

O. Hyvarinen

University of Helsinki

H. Jarleblad

Technical University of Denmark (DTU)

Ye. O. Kazakov

Koninklijke Militaire Universiteit

S. B. Korsholm

Technical University of Denmark (DTU)

M. Nocente

University of Milano-Bicocca

J. Rasmussen

Technical University of Denmark (DTU)

B. C. G. Reman

Koninklijke Militaire Universiteit

A. Snicker

Technical Research Centre of Finland (VTT)

A. Valentini

Technical University of Denmark (DTU)

Y. Dong

Technical University of Denmark (DTU)

D. Moseev

Max Planck Society

M. Salewski

Technical University of Denmark (DTU)

Nuclear Fusion

0029-5515 (ISSN) 1741-4326 (eISSN)

Vol. 65 5 056008

Subject Categories (SSIF 2025)

Fusion, Plasma and Space Physics

DOI

10.1088/1741-4326/adc400

More information

Latest update

4/11/2025