DocumentCode :
2284066
Title :
Kinetic damping of low n ballooning modes
Author :
Hirose, Akira ; Elia, Mohamad
Author_Institution :
Plasma Phys. Lab., Saskatchewan Univ., Saskatoon, Sask., Canada
fYear :
1995
fDate :
5-8 June 1995
Firstpage :
192
Abstract :
Summary form only given, as follows. The stability problem of the ballooning mode in tokamaks has been revisited with a fully kinetic shooting code which exploits the Gaussian-Hermite quadrature method for efficient velocity space integration. As recently reported, the ion temperature gradient (/spl eta//sub i/) destabilizes a non-ideal MHD ballooning mode in the MHD second stability regime. Kinetic resonance is not essential for this mode because the two-fluid approximation is able to recover it at least qualitatively. Strong stabilizing influence of the ion temperature gradient on long wavelength, low n ballooning modes has subsequently been found. Modes in the range k/sub /spl theta//spl rho//<6/spl times/10/sup -2/, which translates into n<10-15, are completely stabilized by a modest ion temperature gradient /spl eta//sub i/>0.3. As is well known, in ideal MHD, high n assumption renders more complete energy minimization and high n modes are expected to be more unstable. The present investigation based on kinetic analysis indicates that only high n ballooning modes can be excited in realistic discharges with finite ion temperature gradients. The damping of low n ballooning mode is a kinetic effect due to the ion magnetic drift resonance which is enhanced by the ion temperature gradient. The two-fluid approximation is unable to reveal stabilizing influence of /spl eta//sub i/. The predicted absence of low n ballooning mode, also confirmed in semi-local kinetic analysis, implies that as the MHD ballooning limit is approached, no catastrophic phenomena (e.g., disruption) should occur although enhancement in the anomalous transport is expected.
Keywords :
ballooning instability; plasma kinetic theory; plasma magnetohydrodynamics; plasma temperature; plasma toroidal confinement; temperature; Gaussian-Hermite quadrature method; MHD second stability regime; anomalous transport; energy minimization; fully kinetic shooting code; ion magnetic drift resonance; ion temperature gradient; kinetic analysis; kinetic damping; kinetic resonance; low n ballooning modes; nonideal MHD ballooning mode; semi-local kinetic analysis; stability; tokamaks; two-fluid approximation; velocity space integration; Damping; Gaussian processes; Kinetic theory; Magnetic analysis; Magnetic resonance; Magnetohydrodynamics; Stability; Temperature; Time of arrival estimation; Tokamaks;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 1995. IEEE Conference Record - Abstracts., 1995 IEEE International Conference on
Conference_Location :
Madison, WI, USA
ISSN :
0730-9244
Print_ISBN :
0-7803-2669-5
Type :
conf
DOI :
10.1109/PLASMA.1995.531700
Filename :
531700
Link To Document :
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