Fifty Years of Magnetic Fusion Research (1958-2008): Brief Historical Overview and Discussion of Future Trends

被引:16
作者
El-Guebaly, Laila A. [1 ]
机构
[1] Univ Wisconsin, Madison, WI 53706 USA
关键词
fusion history; magnetic fusion concepts; power plants designs; TOKAMAK POWER-PLANT; CONCEPTUAL DESIGN; NUCLEAR TECHNOLOGIES; SPHEROMAK REACTOR; OPPORTUNITIES; PHYSICS; ENERGY; CHINA; DEMO;
D O I
10.3390/en30601067
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Fifty years ago, the secrecy surrounding magnetically controlled thermonuclear fusion had been lifted allowing researchers to freely share technical results and discuss the challenges of harnessing fusion power. There were only four magnetic confinement fusion concepts pursued internationally: tokamak, stellarator, pinch, and mirror. Since the early 1970s, numerous fusion designs have been developed for the four original and three new approaches: spherical torus, field-reversed configuration, and spheromak. At present, the tokamak is regarded worldwide as the most viable candidate to demonstrate fusion energy generation. Numerous power plant studies (>50), extensive R&D programs, more than 100 operating experiments, and an impressive international collaboration led to the current wealth of fusion information and understanding. As a result, fusion promises to be a major part of the energy mix in the 21(st) century. The fusion roadmaps developed to date take different approaches, depending on the anticipated power plant concept and the degree of extrapolation beyond ITER. Several Demos with differing approaches will be built in the US, EU, Japan, China, Russia, Korea, India, and other countries to cover the wide range of near-term and advanced fusion systems.
引用
收藏
页码:1067 / 1086
页数:20
相关论文
共 61 条
[1]   Overview of the European Union fusion nuclear technologies development and essential elements on the way to DEMO [J].
Andreani, R ;
Diegele, E ;
Gulden, W ;
Lässer, R ;
Maisonnier, D ;
Murdoch, D ;
Pick, M ;
Poitevin, Y .
FUSION ENGINEERING AND DESIGN, 2006, 81 (1-7) :25-32
[2]  
BADGER B, 1979, NUWMAK TOKAMAK REACT
[3]  
BADGER B., 1980, UWFDM400
[4]  
Badger B, 1982, University of Wisconsin Fusion Technology Institute Report UWFDM-550
[5]  
Baker C.C., 1980, Argonne National Laboratory ANL/FPP-80-1
[6]  
Bohme G., 1987, FPA872
[7]  
Dean S. O., 1991, Journal of Fusion Energy, V10, P197, DOI 10.1007/BF01050627
[8]  
DIMOV GI, 1976, SOV J PLASMA PHYS, V2, P326
[9]  
El-Guebaly LA, 2009, NUCLEAR REACTORS, NUCLEAR FUSION AND FUSION ENGINEERING, P217
[10]  
ELGUEBALY LA, 2009, P 3 IAEA TE IN PRESS