4.4 Article Proceedings Paper

Advanced tokamak research with integrated modeling in JT-60 Upgrade

期刊

PHYSICS OF PLASMAS
卷 17, 期 5, 页码 -

出版社

AIP Publishing
DOI: 10.1063/1.3327917

关键词

fusion reactor divertors; plasma Alfven waves; plasma boundary layers; plasma impurities; plasma instability; plasma magnetohydrodynamics; plasma simulation; plasma toroidal confinement; plasma transport processes; Tokamak devices

资金

  1. Grants-in-Aid for Scientific Research [22760665] Funding Source: KAKEN

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Researches on advanced tokamak (AT) have progressed with integrated modeling in JT-60 Upgrade [N. Oyama , Nucl. Fusion 49, 104007 (2009)]. Based on JT-60U experimental analyses and first principle simulations, new models were developed and integrated into core, rotation, edge/pedestal, and scrape-off-layer (SOL)/divertor codes. The integrated models clarified complex and autonomous features in AT. An integrated core model was implemented to take account of an anomalous radial transport of alpha particles caused by Alfven eigenmodes. It showed the reduction in the fusion gain by the anomalous radial transport and further escape of alpha particles. Integrated rotation model showed mechanisms of rotation driven by the magnetic-field-ripple loss of fast ions and the charge separation due to fast-ion drift. An inward pinch model of high-Z impurity due to the atomic process was developed and indicated that the pinch velocity increases with the toroidal rotation. Integrated edge/pedestal model clarified causes of collisionality dependence of energy loss due to the edge localized mode and the enhancement of energy loss by steepening a core pressure gradient just inside the pedestal top. An ideal magnetohydrodynamics stability code was developed to take account of toroidal rotation and clarified a destabilizing effect of rotation on the pedestal. Integrated SOL/divertor model clarified a mechanism of X-point multifaceted asymmetric radiation from edge. A model of the SOL flow driven by core particle orbits which partially enter the SOL was developed by introducing the ion-orbit-induced flow to fluid equations. (C) 2010 American Institute of Physics. [doi:10.1063/1.3327917]

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