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Overview of the FTU results

G. Pucella, E. Alessi, B. Angelini, M.L. Apicella, G. Apruzzese, G. Artaserse, B. Baiocchi, F. Belli, W. Bin, F. Bombarda, L. Boncagni, A. Botrugno, S. Briguglio, A. Bruschi, P. Buratti, G. Calabrò, M. Cappelli, A. Cardinali, D. Carnevale, L. Carraro, C. Castaldo, F. Causa, S. Ceccuzzi, C. Centioli, R. Cesario, C. Cianfarani, G. Claps, V. Cocilovo, F. Cordella, F. Crisanti, O. D’Arcangelo, M. De Angeli, C. Di Troia, B. Esposito, F. Fanale, D. Farina, L. Figini, G. Fogaccia, D. Frigione, V. Fusco, L. Gabellieri, S. Garavaglia, E. Giovannozzi, G. Gittini, G. Granucci, G. Grosso, M. Iafrati, F. Iannone, L. Laguardia, E. Lazzaro, M. Lontano, G. Maddaluno, S. Magagnino, M. Marinucci, D. Marocco, G. Mazzitelli, C. Mazzotta, V. Mellera, A. Milovanov, D. Minelli, F.C. Mirizzi, A. Moro, S. Nowak, D. Pacella, F. Pallotta, L. Panaccione, M. Panella, V. Pericoli-Ridolfini, A. Pizzuto, S. Podda, M.E. Puiatti, G. Ramogida, G. Ravera, D. Ricci, A. Romano, A. Simonetto, C. Sozzi, U. Tartari, A.A. Tuccillo, O. Tudisco, M. Valisa, B. Viola, E. Vitale, G. Vlad, B. Zeniol, M. Zerbini, F. Zonca, M. Aquilini, P. Cefali, E. Di Ferdinando, S. Di Giovenale, G. Giacomi, A. Grosso, M. Mezzacappa, A. Pensa, P. Petrolini, V. Piergotti, B. Raspante, G. Rocchi, A. Sibio, B. Tilia, R. Tulli, M. Vellucci, D. Zannetti, S. Almaviva, F. Bagnato, G. Brolatti, A. Buscarino, L. Calacci, L. Caneve, M. Carlini, F. Colao, C. Corradino, P. Costa, F. Crescenzi, A. Cucchiaro, A. Doria, G. Ferrò, A. Gabrielli, S. Galeani, C. Galperti, P. Gasior, E. Giovenale, M. Gospodarczyk, L. Jakubowski, M. Kubkowska, A. Lampasi, V. Lazic, L. Lubyako, G. Maffia, F. Martinelli, J.R. Martin Solis, F. Maviglia, R. Mazzuca, M. Moneti, F.P. Orsitto, A. Palucci, M. Passeri, Z. Popovic, C. Possieri, M. Rabinski, S. Ratynskaia, M. Reale, S. Roccella, M. Sassano, F. Starace, P. Tolias, A. Vertkov, J. Zebrowski, P. Zito2019年7月Nuclear FusionIF 3出版社

Since the 2016 IAEA Fusion Energy Conference, FTU operations have been mainly devoted to experiments on runaway electrons and investigations into a tin liquid limiter; other experiments have involved studies of elongated plasmas and dust. The tearing mode onset in the high density regime has been studied by means of the linear resistive code MARS, and the highly collisional regimes have been investigated. New diagnostics, such as a runaway electron imaging spectroscopy system for in-flight runaway studies and a triple Cherenkov probe for the measurement of escaping electrons, have been successfully installed and tested, and new capabilities of the collective Thomson scattering and the laser induced breakdown spectroscopy diagnostics have been explored.

日本語訳

2016年のIAEA核融合エネルギー会議以降、FTUの運転は主に逃走電子の実験とスズ液体リミターの調査に充てられてきた。他の実験には、細長いプラズマとダストの研究が含まれていた。高密度領域におけるティアリングモードの発生は、線形抵抗性コードMARSを用いて研究され、高衝突領域が調査された。飛行中の逃走電子研究のための逃走電子イメージング分光システムや、逃散電子の測定のためのトリプルチェレンコフプローブなどの新しい計測装置が首尾よく設置・試験され、協同トムソン散乱およびレーザー誘起絶縁破壊分光法の計測の新たな機能が探求された。

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