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Please use this identifier to cite or link to this item: http://arks.princeton.edu/ark:/88435/dsp01h128nh17k
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dc.contributor.authorMaingi, R.-
dc.contributor.authorCanik, J.M.-
dc.contributor.authorBell, R.E.-
dc.contributor.authorBoyle, D.P.-
dc.contributor.authorDiallo, A.-
dc.contributor.authorKaita, R.-
dc.contributor.authorKaye, S.M.-
dc.contributor.authorLeBlanc, B.P.-
dc.contributor.authorSabbagh, S.A.-
dc.contributor.authorScotti, F.-
dc.contributor.authorSoukhanovskii, V.A.-
dc.date.accessioned2016-08-31T20:39:41Z-
dc.date.available2016-08-31T20:39:41Z-
dc.date.issued2016-08-
dc.identifier.urihttp://arks.princeton.edu/ark:/88435/dsp01h128nh17k-
dc.description.abstractA sequence of H-mode discharges with increasing levels of pre-discharge lithium evaporation (�dose�) was conducted in high triangularity and elongation boundary shape in NSTX. Energy confinement increased, and recycling decreased with increasing lithium dose, similar to a previous lithium dose scan in medium triangularity and elongation plasmas. Data-constrained SOLPS interpretive modeling quantified the edge transport change: the electron particle diffusivity decreased by 10-30x. The electron thermal diffusivity decreased by 4x just inside the top of the pedestal, but increased by up to 5x very near the separatrix. These results provide a baseline expectation for lithium benefits in NSTX-U, which is optimized for a boundary shape similar to the one in this experiment.en_US
dc.description.tableofcontentsreadme and data filesen_US
dc.language.isoen_USen_US
dc.publisherPrinceton Plasma Physics Laboratory, Princeton Universityen_US
dc.relationFusion Engineering and Designen_US
dc.subjectNSTXen_US
dc.subjectLithiumen_US
dc.subjectRecyclingen_US
dc.subjectPedestalen_US
dc.subjectEnergy confinementen_US
dc.titleEffect of progressively increasing lithium conditioning on edge transport and stability in high triangularity NSTX H-modesen_US
dc.typeDataseten_US
pu.projectgrantnumber31016 G0001 10003086 101-
pu.depositorKaye, Stanley-
dc.contributor.funderU. S. Department of Energy contract number DE-AC02-09CH11466en_US
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