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Helical core formation and MHD stability in ITER-scale plasmas with fusion-born alpha particles

https://repo.qst.go.jp/records/2003024
https://repo.qst.go.jp/records/2003024
3457f9fb-7b0d-4ce5-8e56-f4c3c090434b
アイテムタイプ 学術雑誌論文 / Journal Article(1)
公開日 2026-03-19
タイトル
タイトル Helical core formation and MHD stability in ITER-scale plasmas with fusion-born alpha particles
言語 en
言語
言語 eng
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_6501
資源タイプ journal article
著者 Adulsiriswad Panith

× Adulsiriswad Panith

Adulsiriswad Panith

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Andreas Bierwage

× Andreas Bierwage

Andreas Bierwage

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Yagi Masatoshi

× Yagi Masatoshi

Yagi Masatoshi

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抄録
内容記述タイプ Abstract
内容記述 The effect of fusion-born alpha particles on the helical core (HC), a long-lived ideal saturation state of the m/n=1/1 kink/quasi-interchange mode, is studied in the ITER-scale hybrid scenario where a core plasma has a low magnetic shear q≳1. The HC state is determined by 3-D MHD force balance and all factors that contribute to it, such as plasma shaping, the safety factor profile, and the pressure profiles of all particle species. An incomplete but useful measure of the HC is the displacement of the magnetic axis, δHC. Using MHD-PIC simulations, we find that δHC is enhanced by increasing alpha particle pressure βα. Within the ITER operating alpha pressure βα(0)≲1%, βα, βα can be approximately treated as part of the total MHD pressure. In this regime, there is no notable flattening of the pressure profile, indicating that the HC preserves the omnigenity of the plasma. If one increases βα(0) beyond 1%, δHC continues to increase with βα(0) until it reaches an upper limit at βα(0) =3% for our reference case. At this limit, both the bulk and alpha pressure profiles are partially flattened, indicating a reduction in omnigenity. After HC formation, a resistive pressure-driven MHD mode can become unstable, which seems to be triggered by the local steepening of the bulk plasma pressure gradient within the compressed magnetic flux region of the HC. This secondary mode consists of a broad spectrum of short-wavelength Fourier components that grow at identical rates and are thus part of a single coherent entity. Our present simulation model is insufficient to adequately represent such a secondary mode; however, preliminary results suggest that it can facilitate magnetic chaos, which affects plasma confinement. We also discuss possible methods for suppressing this instability.
書誌情報 IOP Nuclear Fusion

発行日 2026-03
DOI
識別子タイプ DOI
関連識別子 10.1088/1741-4326/ae4fdf
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