Analysis of ICRF Heating Schemes in ITER Non-Active Plasmas Using PION+ETS Integrated Modeling

Author:

Bensadon Tomas1ORCID,Mantsinen Mervi J.12,Jonsson Thomas3ORCID,Gallart Dani1,Sáez Xavier1ORCID,Manyer Jordi1

Affiliation:

1. Barcelona Supercomputing Center, 08034 Barcelona, Spain

2. Catalan Institution for Research and Advanced Studies (ICREA), 08010 Barcelona, Spain

3. Royal Institute of Technology (KTH), School of Electrical Engineering and Computer Science, Department of Electrical Engineering, Division of Electromagnetic Engineering and Fusion Science, 10044 Stockholm, Sweden

Abstract

The PION code has been integrated into the European Transport Solver (ETS) transport workflow, and we present the first application to model Ion Cyclotron Resonance Frequency (ICRF) heating scenarios in the next-step fusion reactor ITER. We present results of predictive, self-consistent and time-dependent simulations where the resonant ion concentration is varied to study its effects on the performance, with a special emphasis on the resulting bulk ion heating and thermal ion temperature. We focus on two ICRF heating schemes, i.e., fundamental H minority heating in a 4He plasma at 2.65 T/7.5 MA and a three-ion ICRF scheme consisting of fundamental 3He heating in a H-4He plasma at 3.3 T/ 8.8 MA. The H minority heating scenario is found to result in strong absorption by resonant H ions as compared to competing absorption mechanisms and dominant background electron heating for H concentrations up to 10%. The highest H absorption of ∼80% of the applied ICRF power and highest ion temperature of ∼15 keV are obtained with an H concentration of 10%. For the three-ion scheme in 85%:15% H:4He plasma, PION+ETS predicts 3He absorption in the range of 21–65% for 3He concentrations in the range of 0.01–0.20%, with the highest 3He absorption at a 3He concentration of 0.20%.

Funder

the European Union via the Euratom Research and Training Programme

Publisher

MDPI AG

Reference51 articles.

1. ITER Organization (2018). ITER Technical Report ITR-18-003, ITER Organization.

2. Coblentz, L. (2023). ITER Council Meeting: ITER Project Making Progress, Preparing Updated Baseline, ITER Organization.

3. Stix, T. (1992). Waves in Plasmas, Springer.

4. ICRF heating schemes for the ITER non-active phase;Schneider;EPJ Web Conf.,2017

5. On resonant ICRF absorption in three-ion component plasmas: A new promising tool for fast ion generation;Kazakov;Nucl. Fusion,2015

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