Multiscale coherent structures in tokamak plasma turbulence

被引:9
作者
Xu, G. S. [1 ]
Wan, B. N.
Zhang, W.
Yang, Q. W.
Wang, L.
Wen, Y. Z.
机构
[1] Chinese Acad Sci, Inst Plasma Phys, Hefei 230031, Peoples R China
[2] SW Inst Phys, Chengdu 610041, Peoples R China
[3] Chinese Acad Sci, Inst Phys, Beijing 100080, Peoples R China
[4] Univ Sci & Technol China, Anhua 230026, Peoples R China
基金
中国国家自然科学基金;
关键词
D O I
10.1063/1.2357045
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
A 12-tip poloidal probe array is used on the HT-7 superconducting tokamak [Li, Wan, and Mao, Plasma Phys. Controlled Fusion 42, 135 (2000)] to measure plasma turbulence in the edge region. Some statistical analysis techniques are used to characterize the turbulence structures. It is found that the plasma turbulence is composed of multiscale coherent structures, i.e., turbulent eddies and there is self-similarity in a relative short scale range. The presence of the self-similarity is found due to the structural similarity of these eddies between different scales. These turbulent eddies constitute the basic convection cells, so the self-similar range is just the dominant scale range relevant to transport. The experimental results also indicate that the plasma turbulence is dominated by low-frequency and long-wavelength fluctuation components and its dispersion relation shows typical electron-drift-wave characteristics. Some large-scale coherent structures intermittently burst out and exhibit a very long poloidal extent, even longer than 6 cm. It is found that these large-scale coherent structures are mainly contributed by the low-frequency and long-wavelength fluctuating components and their presence is responsible for the observations of long-range correlations, i.e., the correlation in the scale range much longer than the turbulence decorrelation scale. These experimental observations suggest that the coexistence of multiscale coherent structures results in the self-similar turbulent state. (c) 2006 American Institute of Physics.
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页数:10
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[21]   TURBULENCE AND THE DYNAMICS OF COHERENT STRUCTURES .1. COHERENT STRUCTURES [J].
SIROVICH, L .
QUARTERLY OF APPLIED MATHEMATICS, 1987, 45 (03) :561-571
[22]   Transition to subcritical turbulence in a tokamak plasma [J].
van Wyk, F. ;
Highcock, E. G. ;
Schekochihin, A. A. ;
Roach, C. M. ;
Field, A. R. ;
Dorland, W. .
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[23]   COHERENT STRUCTURES AND TURBULENCE. [J].
Fazle Hussain, A.K.M. .
Journal of Fluid Mechanics, 1986, 173 :303-356
[24]   Turbulence and coherent structures in the ocean [J].
Dijkstra, Henk A. .
LECTURE NOTES ON TURBULENCE AND COHERENT STRUCTURES IN FLUIDS, PLASMAS AND NONLINEAR MEDIA, 2006, 4 :81-114
[25]   WAVES AND TURBULENCE IN A TOKAMAK FUSION PLASMA [J].
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Cheng, J. ;
Dong, J. Q. ;
Yan, L. W. ;
Itoh, K. ;
Zhao, K. J. ;
Hong, W. Y. ;
Huang, Z. H. ;
Nie, L. ;
Lan, T. ;
Liu, A. D. ;
Kong, D. F. ;
Xu, M. ;
Tynan, G. R. ;
Yang, Q. W. ;
Ding, X. T. ;
Duan, X. R. ;
Liu, Yong .
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Bisai, N ;
Das, A ;
Deshpande, S ;
Jha, R ;
Kaw, P ;
Sen, A ;
Singh, R .
PHYSICS OF PLASMAS, 2004, 11 (08) :4018-4024
[28]   Structures, wavelet and intermittency in tokamak edge turbulence [J].
Jha, R ;
Mattoo, SK ;
Saxena, YC .
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Yadav, N. ;
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