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Efthimion, P.C.; Hosea, J.C.; Kaita, R.; Majeski, R.; Taylor, G.
Princeton Plasma Physics Lab., NJ (United States). Funding organisation: USDOE Office of Energy Research (ER) (United States)1999
Princeton Plasma Physics Lab., NJ (United States). Funding organisation: USDOE Office of Energy Research (ER) (United States)1999
AbstractAbstract
[en] Most magnetically confined plasma devices cannot take advantage of standard Electron Cyclotron Emission (ECE) diagnostics to measure temperature. They either operate at high density relative to their magnetic field or they do not have sufficient density and temperature to reach the blackbody condition. The standard ECE technique measures the electromagnetic waves emanating from the plasma. Here we propose to measure electron Bernstein waves (EBW) to ascertain the local electron temperature in these plasmas. The optical thickness of EBW is extremely high because it is an electrostatic wave with a large k(subscript i). One can reach the blackbody condition with a plasma density approximately equal to 10(superscript 11) cm(superscript -3) and electron temperature approximately equal to 1 eV. This makes it attractive to most plasma devices. One serious issue with using EBW is the wave accessibility. EBW may be accessible by either direct coupling or mode conversion through an extremely narrow layer (approximately 1-2 mm) in low field devices
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1 May 1999; 6 p; 13. Topical Conference on Applications of Radio Frequency Power to Plasmas; Annapolis, MD (United States); 12-14 Apr 1999; AC02-76CH03073; Also available from OSTI as DE00006797; PURL: https://www.osti.gov/servlets/purl/6797-zXUkps/webviewable/
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