Georgia Tech Studies of Sub-Critical Advanced Burner Reactors with a D-T Fusion Tokamak Neutron Source for the Transmutation of Spent Nuclear Fuel

被引:21
作者
Stacey, W. M. [1 ]
机构
[1] Georgia Tech Fus Res Ctr, Atlanta, GA 30332 USA
关键词
Neutron source; Fusion-fission hybrid; Transmutation reactor; CYCLE ANALYSIS;
D O I
10.1007/s10894-009-9195-0
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
The possibility that a tokamak D-T fusion neutron source, based on ITER physics and technology, could be used to drive sub-critical, fast-spectrum nuclear reactors fueled with the transuranics (TRU) in spent nuclear fuel discharged from conventional nuclear reactors has been investigated at Georgia Tech in a series of studies which are summarized in this paper. It is found that sub-critical operation of such fast transmutation reactors is advantageous in allowing longer fuel residence time, hence greater TRU burnup between fuel reprocessing stages, and in allowing higher TRU loading without compromising safety, relative to what could be achieved in a similar critical transmutation reactor. The required plasma and fusion technology operating parameter range of the fusion neutron source is generally within the anticipated operational range of ITER. The implications of these results for fusion development policy, if they hold up under more extensive and detailed analysis, is that a D-T fusion tokamak neutron source for a sub-critical transmutation reactor, built on the basis of the ITER operating experience, could possibly be a logical next step after ITER on the path to fusion electrical power reactors. At the same time, such an application would allow fusion to contribute to meeting the nation's energy needs at an earlier stage by helping to close the fission reactor nuclear fuel cycle.
引用
收藏
页码:328 / 333
页数:6
相关论文
共 24 条
[1]  
Council N.R., 1996, NUCL WASTES TECHNOLO
[2]  
*DOE, 1999, DOERW0519
[3]   Tokamak fusion neutron source for a fast transmutation reactor [J].
Floyd, J.-P. ;
Jones, S. M. ;
Kato, M. ;
Schultz, J. C. ;
Shrader, B. H. ;
Weathers, J. B. ;
Stacey, W. M. ;
Friis, Z. W. ;
Johnson, R. W. .
FUSION SCIENCE AND TECHNOLOGY, 2007, 52 (03) :727-730
[4]   Nuclear design and analysis of the fusion transmutation of waste reactor [J].
Hoffman, EA ;
Stacey, WM .
FUSION SCIENCE AND TECHNOLOGY, 2004, 45 (01) :51-54
[5]   Nuclear and fuel cycle analysis for a fusion transmutation of waste reactor [J].
Hoffman, EA ;
Stacey, WM .
FUSION ENGINEERING AND DESIGN, 2002, 63-64 :87-91
[6]   Comparative fuel cycle analysis of critical and subcritical fast reactor transmutation systems [J].
Hoffman, EA ;
Stacey, WM .
NUCLEAR TECHNOLOGY, 2003, 144 (01) :83-106
[7]   Fuel cycle analysis of a subcritical fast helium-cooled transmutation reactor with a fusion neutron source [J].
Maddox, J. W. ;
Stacey, W. M. .
NUCLEAR TECHNOLOGY, 2007, 158 (01) :94-108
[8]   A superconducting tokamak Fusion Transmutation of Waste Reactor [J].
Mauer, AN ;
Stacey, WM ;
Mandrekas, J ;
Hoffman, EA .
FUSION SCIENCE AND TECHNOLOGY, 2004, 45 (01) :55-59
[9]  
*OECD NEA, 1999, 1 PHAS P T SYST STUD
[10]  
*OECD NEA, 2006, P 1 5 NEA INT EXCH M