作者
Baonian Wan,Y. Liang,Xianzu Gong,J.G. Li,Nong Xiang,G.S. Xu,Youwen Sun,Liang Wang,J.P. Qian,Haiqing Liu,X.D. Zhang,Liqun Hu,Jiansheng Hu,F.K. Liu,C. D. Hu,Yuanzhe Zhao,Long Zeng,Mao Wang,Handong Xu,Guang–Nan Luo,A. M. Garofalo,A. Ekedahl,Ling Zhang,X.J. Zhang,J. Huang,B. J. Ding,Qing Zang,M.H. Li,Fangyu Ding,S. Ding,Bo Lyu,Yaowei Yu,Tao Zhang,Y. Zhang,Guoqiang Li,Tianyang Xia
摘要
The EAST research program aims to demonstrate steady-state long-pulse advanced high-performance H-mode operations with ITER-like poloidal configuration and RF-dominated heating schemes. Since the 2014 IAEA FEC, EAST has been upgraded with all ITER-relevant auxiliary heating and current drive systems, enabling the investigation of plasma profile control by the coupling/integration of various auxiliary heating combinations. Fully non-inductive steady-state H-mode plasma (H 98,y2 > 1.1) was extended over 60 s for the first time with sole RF heating plus good power coupling and impurity and particle control. By means of the 4.6 GHz and 2.45 GHz LHCD systems, H-mode can be obtained and maintained at relatively high density, even up to n e ~ 4.5 × 1019 m−3, where a current drive effect is still observed. Significant progress has been achieved on EAST, including: (i) demonstration of a steady-state scenario (fully non-inductive with V loop ~ 0.0 V at high β P ~ 1.8 and high-performance in upper single-null (e ~ 1.6) configuration with the tungsten divertor; (ii) discovery of a stationary H-mode regime with no/small ELM using 4.6 GHz LHCD, and; (iii) achievement of ELM suppression in slowly rotating H-mode plasma with n = 1 and 2 RMP compatible with long-pulse operations. The new advances in scenario development provide an integrated solution in achieving long-pulse steady-state operations on EAST.