M3D-K Simulations of Low-n Instability under neutral beam injection Conditions in EXL-50U
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Jixing Yang,
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Shulei Zhao,
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Ruibo ZHANG,
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Yahui Wang,
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Mingyuan Wang,
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Yanbin Wu,
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Tiantian Sun,
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Jiaqi Dong,
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Yuankai Peng,
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Bing Liu,
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yuejiang shi,
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Yunfeng Liang
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Abstract
Global kinetic-Magnetohydrodynamic(MHD) hybrid simulations based on representative EXL-50U design parameters are carried out with the M3D-K code to investigate low-n kink-type instabilities driven by passing energetic beam ions under neutral beam injection (NBI) conditions. For the n=1 fishbone mode, phase-space diagnostics show that the perturbed energetic-particle distribution aligns with the p=-1 resonance, indicating a dominant passing-ion resonance ω=ωφ−ωθ. By scanning the beam injection energy, we find that the mode frequency follows ω∝√E0, consistent with the dependence of passing-ion transit frequencies on particle speed. By scanning the energetic-particle beta, we observe that the linear growth rate shows an overall increasing trend with β<sub>hot0</sub> within the unstable range considered, reflecting a stronger energetic-particle drive at higher fast-ion pressure. At sufficiently high beta, the same passing-ion drive mechanism can also excite n=2 and n=3 instabilities, whose structures are dominated by the n/m=2/2 and n/m=3/3 components, respectively. The corresponding phase-space analysis confirms the generalized resonance condition ω=nωφ−nωθ for n=1--3. These results provide a resonance-based interpretation of NBI-driven low-n activity and offer reference for planning and interpreting forthcoming EXL-50U protium-phase experiments.
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