Sustained nuclear energy without weapons or reprocessing using accelerator-driven systems

被引:0
|
作者
Bowman, CD [1 ]
机构
[1] ADNA Corp, Los Alamos, NM 87544 USA
来源
JOURNAL DE PHYSIQUE IV | 1999年 / 9卷 / P7期
关键词
D O I
10.1051/jp4:1999703
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Accelerator-driven thermal-spectrum molten-salt nuclear technology can greatly simplify nuclear energy technology by eliminating reprocessing and greatly enhancing once-through burn-up. In effect the accelerator may be employed as a substitute for frequent reprocessing and recycle. The accelerator makes possible reduction in plutonium and minor actinides from current LWRs by a factor of more than ten without reprocessing while converting the plutonium remnant to a non-weapons-useful isotopic composition. The accelerator also enhances the once-through energy production from fertile material by a factor of ten without reprocessing compared to once-through LWR technology. This technology would eliminate the need to deploy plutonium production indefinitely, and reprocessing and recycle for at least several hundred years. The energy production technology proposed here operates primarily on the Th-U cycle with a minor contribution from the U-Pu cycle to eliminate the weapons-usefulness of U-233. There are two key innovations in addition to the accelerator. One is the use of liquid fuel flowing once through a pool of material undergoing fission thereby allowing high burn-up concurrently with continuous removal of fission product without reprocessing. The second is the unanticipated low capture cross section of fission product nuclides which substantially enhances the neutron economy in this type of system. The supplement of neutrons from the accelerator, the reduced fission product neutron capture, and the continuously flowing fuel are the enablers for the performance described here. This technology allows an essentially complete decoupling of nuclear energy from nuclear weapons.
引用
收藏
页码:35 / 55
页数:21
相关论文
共 50 条
  • [31] An accelerator-driven system for the destruction of nuclear waste
    Revol, JP
    PHYSICS-USPEKHI, 2003, 46 (07) : 725 - 732
  • [32] Safety of accelerator-driven nuclear waste burners
    Wider, HU
    ANNUAL MEETING ON NUCLEAR TECHNOLOGY '98, PROCEEDINGS, 1998, : 217 - 220
  • [33] Safety of accelerator-driven nuclear waste burners
    Wider, HU
    ANNUAL MEETING ON NUCLEAR TECHNOLOGY '98, PROCEEDINGS, 1998, : 217 - 220
  • [34] Nuclear applications of accelerator-driven spallation targets
    Van Tuyle, GJ
    NUCLEAR TECHNOLOGY, 1998, 122 (03) : 330 - 354
  • [35] An accelerator-driven system for the destruction of nuclear waste
    Revol, JP
    PROGRESS IN NUCLEAR ENERGY, 2001, 38 (1-2) : 153 - 166
  • [36] Disposition of nuclear waste using subcritical accelerator-driven systems: Technology choices and implementation scenarios
    Venneri, F
    Williamson, MA
    Li, N
    Houts, MG
    Morley, RA
    Beller, DE
    Sailor, W
    Lawrence, G
    NUCLEAR TECHNOLOGY, 2000, 132 (01) : 15 - 29
  • [37] Accelerator-Driven System Analysis by Using Different Nuclear Data Libraries
    Sugawara, T.
    Zolbadral, Ts.
    Nishihara, K.
    Tsujimoto, K.
    ATOM INDONESIA, 2012, 38 (02) : 71 - 77
  • [38] Use of lead-bismuth coolant in nuclear reactors and accelerator-driven systems
    Gromov, BF
    Belomitcev, YS
    Yefimov, EI
    Leonchuk, MP
    Martinov, PN
    Orlov, YI
    Pankratov, DV
    Pashkin, YG
    Toshinsky, GI
    Chekunov, VV
    Shmatko, BA
    NUCLEAR ENGINEERING AND DESIGN, 1997, 173 (1-3) : 207 - 217
  • [39] Present Status of Evaluated Nuclear Data Library for Accelerator-driven Systems in China
    Han, Yinlu
    Shen, Qingbiao
    Cai, Chonghai
    Zhang, Zhengjun
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2011, 59 (02) : 1069 - 1072
  • [40] Advanced Computational Models for Accelerator-Driven Systems
    Talamo, Alberto
    Ravetto, Piero
    Gudowski, Waclaw
    SCIENCE AND TECHNOLOGY OF NUCLEAR INSTALLATIONS, 2012, 2012