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Inward Transport of a Toroidally Confined Plasma Subject to Strong Radial Electric Fields
Author(s) -
J. Reece Roth,
W. M. Krawczonek,
E.J. Powers,
Jae Y. Hong,
Young C. Kim
Publication year - 1978
Publication title -
physical review letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.688
H-Index - 673
eISSN - 1079-7114
pISSN - 0031-9007
DOI - 10.1103/physrevlett.40.1450
Subject(s) - physics , electric field , torus , plasma , toroid , magnetic field , flux (metallurgy) , atomic physics , electric flux , ion , tokamak , magnetic flux , computational physics , quantum electrodynamics , nuclear physics , optical field , materials science , quantum mechanics , geometry , mathematics , metallurgy
The paper aims at showing that the density and confinement time of a toroidal plasma can be enhanced by radial electric fields far stronger than the ambipolar values, and that, if such electric fields point into the plasma, radially inward transport can result. The investigation deals with low-frequency fluctuation-induced transport using digitally implemented spectral analysis techniques and with the role of strong applied radial electric fields and weak vertical magnetic fields on plasma density and particle confinement times in a Bumpy Torus geometry. Results indicate that application of sufficiently strong radially inward electric fields results in radially inward fluctuation-induced transport into the toroidal electrostatic potential well; this inward transport gives rise to higher average electron densities and longer particle confinement times in the toroidal plasma.

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