Advances in boronization on NSTX-Upgrade
ORAL
Abstract
Boronization has been effective in reducing plasma impurities and enabling access to higher density, higher confinement plasmas in many magnetic fusion devices. The National Spherical Torus eXperiment, NSTX, has recently undergone a major upgrade to NSTX-U in order to develop the physics basis for a ST-based Fusion Nuclear Science Facility (FNSF) with capability for double the toroidal field, plasma current, and NBI heating power and increased pulse duration from 1 - 1.5 s to 5 - 8 s. A new deuterated tri-methyl boron conditioning system was implemented together with a novel surface analysis diagnostic (MAPP). We report on the spatial distribution of the boron deposition versus discharge pressure, gas injection and electrode location. The oxygen concentration of the plasma facing surface was measured by in-vacuo XPS and increased both with plasma exposure and with exposure to trace residual gases. This increase was correlated with the rise of oxygen emission from the plasma. A dedicated experiment is planned to optimize the boronization process including XPS measurements of the plasma facing surface under specific plasma conditions. We will report on the results.
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Authors
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C.H. Skinner
Princeton Plasma Physics Laboratory, PPPL
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W. Blanchard
PPPL
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D. Cai
PPPL
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M. Jaworski
PPPL
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F. Bedoya
University of Illinois Urbana Champaign, University of Illinois Urbana, UIUC, University of Illinois
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J.P. Allain
University of Illinois Urbana Champaign, University of Illinois Urbana, Univesity of Illinois, Center for Plasma Material Interactions, and Micro and Nanotechnology Center, Urbana, IL 61801, University of Illinois at Urbana Champaign, University of Illinois, UIUC
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F. Scotti
LLNL, Lawrence Livermore National Laboratory
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B.E. Koel
Princeton University, Department of Chemical & Biological Engineering, Princeton University