ECRH antenna at 140 GHz on FTU Tokamak

被引:17
作者
Bruschi, A
Bozzi, R
Cirant, S
Gandini, F
Granucci, G
Mantovani, S
Mellera, V
Muzzini, V
Nardone, A
Nowak, S
Simonetto, A
Sozzi, C
Spinicchia, N
机构
[1] EURATOM Assoc, ENEA, Ist Fis Plasma, CNR Fus, I-20125 Milan, Italy
[2] EURATOM Assoc, ENEA, CNR Fus, Ctr Ric Energia, I-00044 Frascati, Italy
关键词
ERCH; antenna; FTU Tokamaks;
D O I
10.1016/S0920-3796(00)00517-2
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
The quasi-optical beam launching antenna for the Electron Cyclotron Resonance Heating (ECRH) experiment at 140 GHz, 1.6 MW to the plasma, on the Frascati Tokamak Upgrade (FTU) has been successfully exploited in experimental operations. It provides four beams 400 kW each, with independent poloidal and toroidal steering capability and a maximum power density of 60 kW/cm(2) at the plasma edge. The beam radius in the plasma is approximate to 20 mm, allowing a very high localisation of the absorbed power. The main characteristics of the antenna are: Four movable launching mirrors under vacuum, far from the plasma edge (no movable parts near the plasma). Oblique toroidal injection capability at fixed angles obtained with reflections on two fixed stainless steel plates, gold plated, inserted at the sides of the port. Vacuum gate separating the main vacuum from the appendix containing the two matching mirrors and the barrier window (for safety and maintenance). All movements are transferred outside the vacuum chamber through bellows and linear displacement. Actuators and encoders are in air. Full capability to adjust small movements of the machine during cool-down and warm-up, preserving the alignment. Pattern measurements at low power before installation were performed to characterise the effects of the real system on the ideal shape and the polarisation of the launched beams, with particular attention to diffraction effects. Final control of the shape of the beams and the alignment of the mirrors in the system is performed after installation, under vacuum and with the tokamak at liquid nitrogen temperature, with the aid of a retractable probe and using a thermopile as the RF detector. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:431 / 441
页数:11
相关论文
共 8 条
  • [1] BRUSCHI A, 1998, P 20 S FUS TECHN MAR
  • [2] High core electron confinement regimes in FTU plasmas with low- or reversed-magnetic shear and high power density electron-cyclotron-resonance heating
    Buratti, P
    Barbato, E
    Bracco, G
    Cirant, S
    Crisanti, F
    Granucci, G
    Tuccillo, AA
    Zanza, V
    Zerbini, M
    Acitelli, L
    Alladio, F
    Angelini, B
    Apicella, ML
    Apruzzese, G
    Bertalot, L
    Bertocchi, A
    Borra, M
    Bruschi, A
    Buceti, G
    Cardinali, A
    Centioli, C
    Cesario, R
    Cianfarani, C
    Ciattaglia, S
    Cocilovo, V
    De Angelis, R
    De Marco, F
    Esposito, B
    Frigione, D
    Gabellieri, L
    Gatti, G
    Giovannozzi, E
    Gourlan, C
    Grolli, M
    Imparato, A
    Kroegler, H
    Leigheb, M
    Lovisetto, L
    Maddaluno, G
    Maffia, G
    Marinucci, M
    Mazzitelli, G
    Micozzi, P
    Mirizzi, F
    Nowak, S
    Orsitto, FP
    Pacella, D
    Panaccione, L
    Panella, M
    Ridolfini, VP
    [J]. PHYSICAL REVIEW LETTERS, 1999, 82 (03) : 560 - 563
  • [3] CARSLAW HS, 1959, CONDUCTION HEAT SOLI, P112
  • [4] CIRANT S, IN PRESS 26 EUR PHYS
  • [5] GRANUCCI G, 1998, P 20 S FUS TECHN MAR, V1, P399
  • [6] NOWAK S, 1999, 13 TOP C APPL RF POW
  • [7] SIMONETTO A, 1998, P 23 INT C INFR MILL
  • [8] SOZZI C, 1999, 13 TOP C APPL RF POW