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        Chapter A test facility to investigate sheath effects during ion cyclotron resonance heating

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        Author(s)
        Crombé, Kristel
        Ochoukov, R.
        Nikiforov, Anton
        Shesterikov, I.
        Van Eester, Dirk
        Faugel, Helmut
        Jacquot, Jonathan
        Faudot, Eric
        D’ Inca, Rodolphe
        Heuraux, Stéphane
        Usoltceva, M.
        Kostic, A.
        Fuenfgelder, H.
        Noterdaeme, Jean-Marie
        Louche, Fabrice
        Language
        English
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        Abstract
        Nuclear fusion is a promising candidate to supply energy for future generations. At the high temperatures needed for the nuclei to fuse, ions and electrons are no longer bound into atoms. Magnetic fields confine the resulting plasma. One of the heating methods is the ion cyclotron resonant absorption of waves emitted by an external Ion Cyclotron Radio Frequency (ICRF) antenna. The efficiency of ICRF heating is strongly affected by rectified RF electric fields at antenna and other in-vessel components (so-called ‘sheath effects’). The chapter presents an overview of ICRF principles. Attention is given to characterising the detrimental sheath effects through experiments on a dedicated test facility (IShTAR: Ion cyclotron Sheath Test ARrangement). IShTAR has a linear magnetic configuration and is equipped with an independent helicon plasma source. The configuration and capabilities of the test-bed and its diagnostics are described, as well as an analysis of the plasmas.
        URI
        https://library.oapen.org/handle/20.500.12657/49321
        Keywords
        plasma, helicon, radio frequency, sheaths, diagnostics
        DOI
        10.5772/intechopen.76730
        Publisher
        InTechOpen
        Publisher website
        https://www.intechopen.com/
        Publication date and place
        2019
        Classification
        Physics
        Rights
        https://creativecommons.org/licenses/by/3.0/
        • Imported or submitted locally

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        License

        • If not noted otherwise all contents are available under Attribution 4.0 International (CC BY 4.0)

        Credits

        • logo EU
        • This project received funding from the European Union's Horizon 2020 research and innovation programme under grant agreement No 683680, 810640, 871069 and 964352.

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