Overview of the physics design of the EHL-2 spherical torus

被引:0
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作者
梁云峰
谢华生
石跃江
顾翔
姜欣辰
董力立
王雪韵
杨丹可
刘文军
孙恬恬
王嵎民
李直
蔡剑青
宋显明
谭沐芝
杨光
赵寒月
董家齐
彭元凯
宋绍栋
陈正元
李颖颖
刘兵
罗迪
杨圆明
刘敏胜
Jianqing CAI
Zhengyuan CHEN
Jiaqi DONG
Lili DONG
Kaiming FENG
Xingxin GE
Xiang GU
Dong GUO
Lei HAN
Hairong HUANG
Kunwei HUANG
Xianli HUANG
Xinchen JIANG
Dongxu LI
Hongyue LI
Pengmin LI
Songjian LI
Yingying LI
Zhi LI
Yunfeng LIANG
Bing LIU
Minsheng LIU
Shuo LIU
Wenjun LIU
机构
[1] Hebei Key Laboratory of Compact Fusion
[2] Forschungszentrum Jülich GmbH
[3] Institute of Fusion Energy and Nuclear Waste Management-Plasmaphysik
[4] ENN Science and Technology Development Co
[5] Ltd
[6] Southwestern Institute of Physics
[7] DISAT
[8] Polytechnic University of Turin
[9] Huazhong University of Science and Technology
[10] Key Laboratory of Materials Modification by Laser
[11] Ion and Electron Beams (Ministry of Education)
[12] School of Physics
[13] Dalian University of Technology
[14] Beihang University
[15] Hengyang Normal University
[16] College of Computer Science
[17] South-Central Minzu University
[18] Centre for Theoretical and Computational Physics
[19] College of Physics
[20] Qingdao University
[21] College of physics
[22] Donghua University
[23] Hefei University of Technology
[24] School of Electrical Engineering& Automation
[25] Jiangsu Normal University
[26] School of Liberal Arts and Sciences
[27] North China Institute of Aerospace Engineering
[28] Zhejiang University
[29] Department of Plasma Physics and Fusion Engineering
[30] University of Science and Technology of China
[31] University of South
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TL631.24 [];
学科分类号
摘要
ENN is planning the next generation experimental device EHL-2 with the goal to verify the thermal reaction rates of p-11B fusion,establish spherical torus/tokamak experimental scaling laws at 10's keV ion temperature,and provide a design basis for subsequent experiments to test and realize the p-11B fusion burning plasma.Based on 0-dimensional(0-D) system design and 1.5-dimensional transport modelling analyses,the main target parameters of EHL-2 have been basically determined,including the plasma major radius,R0,of 1.05 m,the aspect ratio,A,of 1.85,the maximum central toroidal magnetic field strength,B0,of 3 T,and the plasma toroidal current,Ip,of 3 MA.The main heating system will be the neutral beam injection at a total power of 17 MW.In addition,6 MW of electron cyclotron resonance heating will serve as the main means of local current drive and MHD instabilities control.The physics design of EHL-2 is focused on addressing three main operating scenarios,i.e.,(1) high ion temperature scenario,(2) high-performance steady-state scenario and(3) high triple product scenario.Each scenario will integrate solutions to different important issues,including equilibrium configuration,heating and current drive,confinement and transport,MHD instability,p-11B fusion reaction,plasma-wall interactions,etc.Beyond that,there are several unique and significant challenges to address,including● establish a plasma with extremely high core ion temperature(Ti,0> 30 keV),and ensure a large ion-to-electron temperature ratio(Ti,0/Te,0> 2),and a boron concentration of 10%-15% at the plasma core;● realize the start-up by non-inductive current drive and the rise of MA-level plasma toroidal current.This is because the volt-seconds that the central solenoid of the ST can provide are very limited;● achieve divertor heat and particle fluxes control including complete detachment under high P/R(> 20 MW/m) at relatively low electron densities.This overview will introduce the advanced progress in the physics design of EHL-2.
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页码:9 / 28
页数:20
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