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首页> 外文期刊>Fusion Science and Technology >AXISYMMETRIC MAGNETIC MIRROR APPLICATIONSDIVERTOR TEST STAND TO FUSION POWER PLANT
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AXISYMMETRIC MAGNETIC MIRROR APPLICATIONSDIVERTOR TEST STAND TO FUSION POWER PLANT

机译:轴对称磁镜的应用分流器测试台在熔融电厂中的应用

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摘要

Axisymmetric mirrors can be MHD-stabilized by end losses. Neutral-beam-sustained operation to β~0.6, and T_e~0.2 keV, with 5 ms 5 MW neutral beams on the Gas Dynamic Trap (GDT) has been demonstrated at the Budker Institute in Novosibirsk, Russia. Applications of this concept can reduce risks in the fusion program. A GDT-scale facility could test plasma-material interactions (PMI) at up to 400 MW/m~2 and 5 s pulse duration for divertor development. Extrapolation of the GDT to a Dynamic Trap Neutron Source, DTNS, provides a DT-fusion neutron flux of 2 MW/m~2 over 1 m~2, at a power-plant efficiency of Q ~ 0.07. (A DTNS enables development and testing of materials and sub-component structures, for fusion power plants, MFE or IFE. A DTNS functions regardless of whether the tested components work. These developments would reduce risks for a tokamak Fusion Nuclear Science Facility (FNSF)). Further extrapolation to 0.2≤Q ≤10 single-cell or tandem mirror yields several fusion-fission hybrid applications. Further extension to a pure-fusion axisymmetric-tandem-mirror power plant, requires Q>10. Tandem mirrors demand the use of different stabilization techniques that are not dependent on out-flowing plasma, a number of which have been proposed, and could be experimentally tested on the GDT.
机译:轴对称反射镜可以通过端损耗实现MHD稳定。在俄罗斯新西伯利亚的Budker研究所已证明,在气体动态阱(GDT)上使用5 ms 5 MW中性束,中性束可持续运行至β〜0.6,T_e〜0.2 keV。应用此概念可以降低融合程序中的风险。 GDT规模的设施可以测试高达400 MW / m〜2的等离子体-材料相互作用(PMI)和5 s的脉冲持续时间,以开发偏滤器。将GDT外推到动态陷阱中子源DTNS,可在1 m〜2范围内提供2 MW / m〜2的DT融合中子通量,发电厂效率为Q〜0.07。 (DTNS能够开发和测试聚变电站,MFE或IFE的材料和子组件结构。无论被测组件是否工作,DTNS都可以发挥作用。这些开发将降低托卡马克聚变核科学设施(FNSF)的风险)。进一步外推至0.2≤Q≤10的单电池或串联镜可产生多种融合裂变混合应用。要进一步扩展到纯融合轴对称串联镜像电厂,需要Q> 10。串联镜要求使用不依赖于流出等离子体的不同稳定技术,已经提出了许多稳定等离子体技术,并且可以在GDT上进行实验测试。

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  • 来源
    《Fusion Science and Technology》 |2012年第1t期|p.70-76|共7页
  • 作者单位

    Lawrence Livermore National Laboratory, Livermore, CA 94550 USA;

    Lawrence Livermore National Laboratory, Livermore, CA 94550 USA;

    Lawrence Livermore National Laboratory, Livermore, CA 94550 USA;

    University of California, Berkeley, CA 94720 USA;

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