Optimizing the Super H-mode pedestal to improve performance and facilitate divertor integration

Access to Super H-mode is demonstrated for moderately shaped plasmas in agreement with EPED [Snyder et al., Phys. Plasmas 16, 056118 (2009)] predictions. In particular, Super H-mode is realized in a DIII-D shape that is accessible to the JET tokamak. The reduced triangularity of the JET-compatible s...

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Veröffentlicht in:Physics of plasmas 2020-10, Vol.27 (10)
Hauptverfasser: Knolker, M., Snyder, P. B., Evans, T. E., Wilks, T., Eldon, D., Grierson, B., Jaervinen, A., Jian, X., Laggner, F., McClenaghan, J., McLean, A. G., Osborne, T., Paz-Soldan, C., Scotti, F., Solomon, W.
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Sprache:eng
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Zusammenfassung:Access to Super H-mode is demonstrated for moderately shaped plasmas in agreement with EPED [Snyder et al., Phys. Plasmas 16, 056118 (2009)] predictions. In particular, Super H-mode is realized in a DIII-D shape that is accessible to the JET tokamak. The reduced triangularity of the JET-compatible shape compared to previous Super H-mode plasma shapes does not prevent deep ascension into the so-called Super H-mode “channel.” Operationally, access is enabled and optimized by delaying the neutral beam power injection and, thus, protracting the L–H transition. In highly shaped DIII-D plasmas, the injection of nitrogen sufficient for the establishment of a radiative divertor is shown to be possible during Super H-mode without pedestal degradation. Due to its increased stored energy and radiative divertor integration capabilities, Super H-mode is a promising candidate as operating regime for JET, ITER, and future fusion reactors.
ISSN:1070-664X
1089-7674
DOI:10.1063/5.0011008