HL-3 research towards high-performance plasma and power exhaust solution
- Zhong, Wulyu;
- Ji, Xiao Quan;
- Chen, Wei;
- Bai, Xingyu;
- Becoulet, Alain;
- Bucalossi, Jerome B;
- Chen, Zhe;
- Chen, Shaoyong;
- Chen, Zhipeng;
- Chen, Yihang;
- Conway, Neil;
- Delpech, Lena;
- Diamond, Patrick H;
- Du, Hailong;
- Ekedahl, Annika;
- FAN, Dongmei;
- Gao, Jinming;
- Garcia, Jeronimo;
- Gribov, Yuri;
- Guo, Weixin;
- Guo, zhipku;
- Hao, Guangzhou;
- Harrison, James R;
- Huang, Mei;
- Huynh, Philippe;
- Isobe, Mitsutaka;
- Imadera, K;
- Jiang, Min;
- Kamada, Yutaka;
- Kim, Sun Hee;
- King, Damian;
- Kishimoto, Yasuaki;
- Liang, Anshu;
- Liu, Xiaolong;
- Li, B;
- Li, Jiaxian;
- Loarte, Alberto;
- Militello, Fulvio;
- Morita, Shigeru;
- Nagasaki, Kazunobu;
- Nie, Lin;
- Ogawa, Kunihiro;
- Schneider, Mireille;
- Shi, Zhongbing;
- Sun, Tengfei;
- Rimini, Fernanda;
- Sun, Hongjuan;
- Wang, Yingqiao;
- Wang, Xiaogang;
- Wei, Huiling;
- Wu, Na;
- Xiao, Guoliang;
- Xue, Guanqun;
- Xue, Lei;
- Xu, Xin;
- Yang, Zongyu;
- Yu, Peixuan;
- Yu, Yi;
- Yuan, Boda;
- Zhang, Feng;
- Zhang, Junzhao;
- Zhang, Yi;
- Zhang, Yipo;
- Zheng, Xue;
- Zou, Xiao Lan;
- Zhu, yiren;
- Xu, Min;
- Duan, Xuru;
- Liu, Yong;
- Zhang, libo;
- Liu, ye
Published Web Location
https://iopscience.iop.org/article/10.1088/1741-4326/ae8709Abstract
Abstract The HL-3 tokamak program addresses critical challenges in developing integrated high-performance scenarios compatible with power exhaust demands for ITER and future reactors. Through systematic facility enhancements including auxiliary heating upgrades to 19.5 MW and AI-enabled control systems achieving 95.5% disruption avoidance, HL-3 finished a new round of exploration and validation for high-performance operation and power exhaust solution. Experiments at mega-ampere plasma currents demonstrated a reactor-relevant hot-ion regime with core ion temperatures exceeding 10 keV and a fusion triple product of . High normalized beta scenarios featuring internal and double transport barriers were successfully established. To address the compatibility of the plasma boundary, various small- or no-edge localized mode (ELM) regimes were achieved, including the enhanced D-alpha (EDA) H-mode, quiescent H-mode (QH-mode), and the quasi continuous exhaust (QCE) regime. Investigations into power exhaust integration highlighted the efficacy of advanced divertor configurations, specifically snowflake and tripod geometries, in significantly reducing peak heat fluxes. Active ELM control was demonstrated via resonant magnetic perturbations (RMPs), lower hybrid waves (LHW), and impurity supersonic molecular beam injection (SMBI), complemented by real-time feedback control of divertor detachment. These developments establish the fundamental physics basis and technical foundations necessary for demonstrating and extrapolating high-performance operations to ITER and next-step devices.
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