Control of the resistive wall mode with internal coils in the DIII-D tokamak

被引:78
作者
Okabayashi, M
Bialek, J
Bondeson, A
Chance, MS
Chu, MS
Garofalo, AM
Hatcher, R
In, Y
Jackson, GL
Jayakumar, RJ
Jensen, TH
Katsuro-Hopkins, O
La Haye, RJ
Liu, YQ
Navratil, GA
Reimerdes, H
Scoville, JT
Strait, EJ
Takechi, M
Turnbull, AD
Gohil, P
Kim, JS
Makowski, MA
Manickam, J
Menard, J
机构
[1] Gen Atom Co, San Diego, CA 92186 USA
[2] Princeton Plasma Phys Lab, Princeton, NJ 08543 USA
[3] Columbia Univ, New York, NY USA
[4] Chalmers Univ Technol, S-41296 Gothenburg, Sweden
[5] FARTECH Inc, San Diego, CA USA
[6] Lawrence Livermore Natl Lab, Livermore, CA USA
[7] Japan Atom Energy Res Inst, Naka, Ibaraki 31101, Japan
关键词
D O I
10.1088/0029-5515/45/12/028
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Internal coils, 'I-Coils', were installed inside the vacuum vessel of the DIII-D device to generate non-axisymmetric magnetic fields to act directly on the plasma. These fields are predicted to stabilize the resistive wall mode (RWM) branch of the long-wavelength external kink mode with plasma beta close to the ideal wall limit. Feedback using these I-Coils was found to be more effective as compared to using external coils located outside the vacuum vessel. Locating the coils inside the vessel allows for a faster response and the coil geometry also allows for better coupling to the helical mode structure. Initial results were reported previously (Strait E.J. et al 2004 Phys. Plasmas 112505). This paper reports on results from extended feedback stabilization operations, achieving plasma parameters up to the regime of C beta approximate to 1.0 and open loop growth rates of gamma(open) tau(w) greater than or similar to 25 where the RWM was predicted to be unstable with only the 'rotational viscous stabilization mechanism'. Here C beta approximate to (beta - beta(no-wall.limit))/(beta(ideal.limit) - beta(no-wall.limit)) is a measure of the beta relative to the stability limits without a wall and with a perfectly conducting wall, and tau(w) is the resistive flux penetration time of the wall. These feedback experimental results clarified the processes of dynamic error field correction and direct RWM stabilization, both of which took place simultaneously during RWM feedback stabilization operation. MARS-F modelling provides a critical rotation velocity in reasonable agreement with the experiment and predicts that the growth rate increases rapidly as rotation decreases below the critical. The MARS-F code also predicted that for successful RWM magnetic feedback, the characteristic time of the power supply should be limited to a fraction of the growth time of the targeted RWM. The possibility of further improvements in the presently achievable range of operation of feedback gain values is also discussed.
引用
收藏
页码:1715 / 1731
页数:17
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