ENN He Long-2 (EHL-2) is the next-generation large mega-Ampere (MA) spherical torus (ST) proposed and funded by the ENN company. The design parameters are: Ti0 > 30 keV, , Ip ~ 3 MA, Bt ~ 3 T. One of the biggest challenges of EHL-2 is how to achieve several MA current flat-tops with limited voltage-seconds (Vs) of the center solenoid (CS) coils. In order to minimize the consumption of Vs, a fully non-inductive start-up by electron cyclotron resonance heating (ECRH) will be applied in EHL-2. The ramp-up phase will be accomplished with the synergetic mode between the CS and non-inductive methods. The strategy of non-inductive start-up and ramp-up with synergetic mode has been verified on EXL-50U’s experiments. Based on this strategy, numerical simulations indicate the feasibility of EHL-2 achieving 3 MA plasma current. A high-performance steady-state scenario with Ip ~ 1.5 MA is also designed. In this scenario, the bootstrap current fraction fBS > 70%, the safety factor q at the magnetic axis q0 > 2, the minimum safety factor qmin > 1, the poloidal beta βp > 3 and normalized beta βN > 2.3. Each design iteration integrates the validation of physical models with the constraints of engineering implementation, gradually optimizing the performance of the heating and current drive (H&CD) systems. Numerical simulation results for general auxiliary H&CD systems such as neutral beam injection (NBI), electron cyclotron (EC) wave, ion cyclotron wave (ICW), and lower hybrid wave (LHW) are presented. These simulation results ensure that the 31 MW H&CD systems comprehensively cover all scenarios while maintaining engineering feasibility.

Physics design of current drive and strategy of heating system for EHL-2 spherical torus / JIANG 姜, Xinchen 欣辰; SHI 石, Yuejiang 跃江; SONG 宋, Shaodong 绍栋; LIU 刘, Wenjun 文军; YANG 杨, Guang 光; SONG 宋, Xianming 显明; WANG 王, Xueyun 雪韵; GU 顾, Xiang 翔; YIN 尹, Gang 刚; YANG 杨, Danke 丹可; ZHAO 赵, Hanyue 寒月; WANG 王, Yumin 嵎民; XIE 谢, Huasheng 华生; LI 李, Pengmin 鹏敏; WANG 王, Hanqing 汉清; ZHANG 张, Keqing 克卿; HAN 韩, Lei 磊; WU 邬, Xiaohe 潇河; LIU 刘, Chengyue 成岳; WU 吴, Bin 斌; SONG 宋, Chengyi 城邑; LI 李, Chunyan 春艳; CHEN 陈, Jiakang 嘉康; ZHENG 郑, Pingwei 平卫; Banerjee, Debabrata; YANG 杨, Qingwei 青巍; DONG 董, Jiaqi 家齐; LIANG 梁, Yunfeng 云峰; YUAN 袁, Baoshan 保山; PENG 彭, Yueng-Kay Martin 元凯; ZHANG 张, Xianmei 先梅; Team, the EHL-2. - In: PLASMA SCIENCE & TECHNOLOGY. - ISSN 1009-0630. - 27:2(2025), pp. 1-14. [10.1088/2058-6272/adae71]

Physics design of current drive and strategy of heating system for EHL-2 spherical torus

BANERJEE, Debabrata;
2025

Abstract

ENN He Long-2 (EHL-2) is the next-generation large mega-Ampere (MA) spherical torus (ST) proposed and funded by the ENN company. The design parameters are: Ti0 > 30 keV, , Ip ~ 3 MA, Bt ~ 3 T. One of the biggest challenges of EHL-2 is how to achieve several MA current flat-tops with limited voltage-seconds (Vs) of the center solenoid (CS) coils. In order to minimize the consumption of Vs, a fully non-inductive start-up by electron cyclotron resonance heating (ECRH) will be applied in EHL-2. The ramp-up phase will be accomplished with the synergetic mode between the CS and non-inductive methods. The strategy of non-inductive start-up and ramp-up with synergetic mode has been verified on EXL-50U’s experiments. Based on this strategy, numerical simulations indicate the feasibility of EHL-2 achieving 3 MA plasma current. A high-performance steady-state scenario with Ip ~ 1.5 MA is also designed. In this scenario, the bootstrap current fraction fBS > 70%, the safety factor q at the magnetic axis q0 > 2, the minimum safety factor qmin > 1, the poloidal beta βp > 3 and normalized beta βN > 2.3. Each design iteration integrates the validation of physical models with the constraints of engineering implementation, gradually optimizing the performance of the heating and current drive (H&CD) systems. Numerical simulation results for general auxiliary H&CD systems such as neutral beam injection (NBI), electron cyclotron (EC) wave, ion cyclotron wave (ICW), and lower hybrid wave (LHW) are presented. These simulation results ensure that the 31 MW H&CD systems comprehensively cover all scenarios while maintaining engineering feasibility.
File in questo prodotto:
File Dimensione Formato  
PST-2024.pdf

accesso aperto

Tipologia: 1. Preprint / submitted version [pre- review]
Licenza: Pubblico - Tutti i diritti riservati
Dimensione 2.22 MB
Formato Adobe PDF
2.22 MB Adobe PDF Visualizza/Apri
pdf.pdf

accesso riservato

Tipologia: 2a Post-print versione editoriale / Version of Record
Licenza: Non Pubblico - Accesso privato/ristretto
Dimensione 1.82 MB
Formato Adobe PDF
1.82 MB Adobe PDF   Visualizza/Apri   Richiedi una copia
Pubblicazioni consigliate

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/3009148