Fast dynamics of type I ELMs and transport of the ELM pulse in JT-60U

被引:46
作者
Oyama, N [1 ]
Asakura, N [1 ]
Chankin, AV [1 ]
Oikawa, T [1 ]
Sugihara, M [1 ]
Takenaga, H [1 ]
Itami, K [1 ]
Miura, Y [1 ]
Kamada, Y [1 ]
Shinohara, K [1 ]
机构
[1] Japan Atom Energy Res Inst, Naka, Ibaraki 3110193, Japan
关键词
D O I
10.1088/0029-5515/44/5/002
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
Simultaneous fast ELM measurements using a reflectometer, interferometers, D-alpha intensity and a magnetic probe reveal the detailed characteristics of type I ELMs. From the phase signal of the reflectometer indicating the radial movement of the cut-off layer, four different phases in the ELM event, i.e. a precursor phase, collapse phase, recovery phase and a relaxation phase, were observed. In the collapse phase, the radial extent of the collapse of the density pedestal reached up to twice the pedestal width. A fast drop of the horizontal interferometer signal was observed, while the vertical interferometer on the high-field side edge plasma only exhibited a small and delayed reduction. These features of the plasma response due to ELMs might indicate a non-uniform collapse of the density pedestal in the poloidal direction, localized near the low-field side (LFS) midplane. Expelled particles from the LFS midplane were measured by using scrape-off layer Mach probes, and the heat flux to the divertor target was measured using a fast infrared TV camera. The time constant of the peak heat load was comparable to that of the enhancement of the plasma flow towards the divertor target. The normalized ELM energy loss by pedestal stored energy in JT-60U was found to be less than 10% of the pedestal stored energy. It shows weak dependence on the pedestal parameters such as electron collisionality, parallel ion loss time and the ratio of the pedestal density to the Greenwald density limit.
引用
收藏
页码:582 / 592
页数:11
相关论文
共 36 条
[31]  
SNYDER PB, 2000, P 19 INT C FUS EN 20
[32]   Diagnostics system of JT-60U [J].
Sugie, T ;
Hatae, T ;
Koide, Y ;
Fujita, T ;
Kusama, Y ;
Nishitani, T ;
Isayama, A ;
Sato, M ;
Shinohara, K ;
Asakura, N ;
Konoshima, S ;
Kubo, H ;
Takenaga, H ;
Kawano, Y ;
Kondoh, T ;
Nagashima, A ;
Fukuda, T ;
Sunaoshi, H ;
Naito, O ;
Kitamura, S ;
Tsukahara, Y ;
Sakasai, A ;
Sakamoto, Y ;
Suzuki, T ;
Tobita, K ;
Nemoto, M ;
Morioka, A ;
Ishikawa, M ;
Ishida, S ;
Isei, N ;
Oyama, N ;
Neyatani, Y ;
Itami, K ;
Sakurai, S ;
Tamai, H ;
Tsuchiya, K ;
Higashijima, S ;
Nakano, T ;
Nagaya, S ;
Chiba, S ;
Lee, S ;
Shitomi, M .
FUSION SCIENCE AND TECHNOLOGY, 2002, 42 (2-3) :482-511
[33]   ELM-free stationary H-mode plasmas in the ASDEX upgrade tokamak [J].
Suttrop, W ;
Maraschek, M ;
Conway, GD ;
Fahrbach, HU ;
Haas, G ;
Horton, LD ;
Kurki-Suonio, T ;
Lasnier, CJ ;
Leonard, AW ;
Maggi, CF ;
Meister, H ;
Mück, A ;
Neu, R ;
Nunes, I ;
Pütterich, T ;
Reich, M ;
Sips, ACC .
PLASMA PHYSICS AND CONTROLLED FUSION, 2003, 45 (08) :1399-1416
[34]   The physics of large and small edge localized modes [J].
Suttrop, W .
PLASMA PHYSICS AND CONTROLLED FUSION, 2000, 42 :A1-A14
[35]   Energy and particle losses during type-I ELMy H-mode in ASDEX Upgrade [J].
Urano, H ;
Suttrop, W ;
Horton, LD ;
Herrmann, A ;
Fuchs, JC .
PLASMA PHYSICS AND CONTROLLED FUSION, 2003, 45 (09) :1571-1596
[36]   Edge localized modes (ELMs) [J].
Zohm, H .
PLASMA PHYSICS AND CONTROLLED FUSION, 1996, 38 (02) :105-128