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Crocker, N. A.; Kubota, S.; Peebles, W. A.; Rhodes, T. L.; Fredrickson, E. D.
Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States). Funding organisation: USDOE Office of Science - SC, Fusion Energy Sciences (FES) (SC-24) (United States)2017
Princeton Plasma Physics Laboratory (PPPL), Princeton, NJ (United States). Funding organisation: USDOE Office of Science - SC, Fusion Energy Sciences (FES) (SC-24) (United States)2017
AbstractAbstract
[en] Reflectometry measurements of compressional (CAE) and global (GAE) Alfvén eigenmodes are analyzed to obtain the amplitude and spatial structure of the density perturbations associated with the modes. A novel analysis technique developed for this purpose is presented. The analysis also naturally yields the amplitude and spatial structure of the density contour radial displacement, which is found to be 2–4 times larger than the value estimated directly from the reflectometer measurements using the much simpler 'mirror approximation'. The modes were driven by beam ions in a high power (6 MW) neutral beam heated H-mode discharge (#141398) in the National Spherical Torus Experiment. The results of the analysis are used to assess the contribution of the modes to core energy transport and ion heating. Here, the total displacement amplitude of the modes, which is shown to be larger than previously estimated, is compared to the predicted threshold for the anomalously high heat diffusion inferred from transport modeling in similar NSTX discharges. The results of the analysis also have strong implications for the energy transport via coupling of CAEs to kinetic Alfvén waves seen in simulations with the Hybrid MHD code. Lastly, the amplitudes of the observed CAEs fall well below the thresholdmore » for causing significant ion heating by stochastic velocity space diffusion.
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OSTIID--1464645; AC02-09CH11466; FG02-99ER54527; SC0011810; Available from https://www.osti.gov/biblio/1437750; DOE Accepted Manuscript full text, or the publishers Best Available Version will be available free of charge after the embargo period; arXiv:1804.04564; Country of input: United States
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Journal Article
Journal
Nuclear Fusion; ISSN 0029-5515;
; v. 58(1); vp

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