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Influence of the far non-resonant components of high-n resonant magnetic perturbations on energetic passing ions loss

Yao-Ning Zhang, Kai-Yang He, You-Wen Sun, Bao-Nian Wan, Xue-Min Wu, Peng-Cheng Xie, Yue-Qiang Liu2024年4月Nuclear FusionIF 3出版社

The influence on the loss of energetic passing ions by the n = 4 resonant magnetic perturbation (RMP) is investigated through numerical simulations (here, n is the toroidal mode number of the RMP field). Dedicated efforts have been made to uncover how the plasma response modifies the loss fractions and underlying mechanisms. The stochastization of the drift surfaces and the particle loss fractions increase significantly under the response field, in which the resonant component is significantly shielded. In order to better understand how the response field contributes a considerable drift island width, the respective effect of each poloidal component on the outermost drift island are compared (here, and are poloidal mode numbers of the RMP components and drift island, respectively). Contrary to the intuition that the components with should dominate the sideband resonance, some of the components which fulfill have the dominant contributions under the response field. There are mainly two reasons accounting for this phenomenon, i.e. the drift motion of particles and the enhancement of amplitudes of non-resonant high-m components by the plasma response near the edge due to the resonant field amplification (RFA) effect. The former made it possible for particles to resonate with the far non-resonant components, and the latter significantly enhanced the perturbation field experienced by particles. The above results imply that the RFA effect is more critical than the stochastization of magnetic topology in the fast ion losses under RMP.

日本語訳

n = 4 の共鳴磁場摂動 (RMP) による高エネルギー通過イオンの損失への影響を,数値シミュレーションによって調べた(ここで,n は RMP 場のトロイダルモード数である)。プラズマ応答が損失割合とその背後にあるメカニズムをどのように変化させるかを解明するために,特別な努力が払われた。応答場のもとでは,ドリフト面のストカスティゼーションと粒子損失割合は有意に増加し,その応答場では共鳴成分は著しく遮蔽される。応答場がどのようにしてかなりのドリフトアイランド幅に寄与するかをより深く理解するために,各ポロイダル成分が最も外側のドリフトアイランドに及ぼすそれぞれの効果を比較した(ここで,m と m_I はそれぞれ RMP 成分とドリフトアイランドのポロイダルモード数である)。m = m_I を満たす成分がサイドバンド共鳴を支配するという直感に反して,応答場のもとでは |m - m_I| = 1 を満たす成分の一部が支配的な寄与を持つ。この現象には主に二つの理由がある,すなわち,粒子のドリフト運動と,共鳴場増幅 (RFA) 効果による端近傍でのプラズマ応答が非共鳴の高m成分の振幅を増強することである。前者は粒子が遠い非共鳴成分と共鳴することを可能にし,後者は粒子が経験する摂動場を有意に増強した。以上の結果は,RMP 下での高速イオン損失において,RFA 効果が磁気トポロジーのストカスティゼーションよりも重要であることを示唆する。

wiki

Magnetic perturbationResonant magnetic perturbation

AIによる論文要約

[高n共鳴磁気摂動の遠方非共鳴成分が高エネルギー通過粒子損失に及ぼす影響]
JAこの論文は、核融合プラズマにおける高エネルギー粒子挙動の理解に関心のある研究者や学生に有益です。特に、共鳴磁気摂動がプラズマ中の高エネルギー粒子に及ぼす影響を詳細に解明しています。#核融合プラズマ #高エネルギー粒子 #共鳴磁気摂動 #プラズマ応答 #粒子損失

この論文では、n=4共鳴磁気摂動(RMP)が高エネルギー通過粒子の損失に及ぼす影響を数値シミュレーションで調べています。プラズマ応答により、磁気面のカオス化と粒子損失が大きく増加することがわかりました。特に、共鳴条件を満たさない高ポロイダルモード数成分が、粒子の運動共鳴と磁気面増幅効果により、粒子損失に大きな影響を及ぼすことが明らかになりました。

Influence of the far non-resonant components of high-n resonant magnetic perturbations on energetic passing ions loss
ENThis paper should be of interest to fusion researchers studying the effects of RMPs on fast ion behavior, as well as those working on plasma response and energetic particle physics in tokamaks.#FastIonLoss #PlasmaResponse #ResonantMagneticPerturbations #FusionResearch

This paper investigates how the plasma response to resonant magnetic perturbations (RMPs) affects the loss of high-energy passing ions. The study shows that the non-resonant components of the RMP field can significantly contribute to particle losses, due to the drift motion of particles and the amplification of these components by the plasma response. These findings highlight the importance of considering the full RMP spectrum, not just the resonant components, when studying the impact of RMPs on fast ion confinement.

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