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首页> 外文期刊>Fusion Science and Technology >NEUTRONICS ANALYSIS ON THE BEAM OPTICS FROM CYLINDICAL DISCHARGE TYPE FUSION DEVICE
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NEUTRONICS ANALYSIS ON THE BEAM OPTICS FROM CYLINDICAL DISCHARGE TYPE FUSION DEVICE

机译:圆柱形放电型融合装置梁光学器件的中型分析

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摘要

Neutron transport and energy composition of neutron beam extracted from a cylindrical discharge type fusion device was studied by using the computer simulation code, MCNP. In this study, three concepts of neutron beam optics (reflector and moderator) were proposed and examined; combined reflector which consists of two layers of different materials, inserting a moderator into the reflector to thermalize the neutron beam, and bending the extraction channel to avoid direct extraction of high energy neutrons. Combined reflector system produces 3.2 times higher neutron flux than no reflector when using W and Fe as outer and inner reflectors. The beam convergence is not dependent on reflector materials. Polyethylene (PE) and Fe combination produces fast neutron beam where more than 90% of the neutrons are fast. Combination of PE and D_2O produces more than 30% thermalized neutron beam, but it contains epithermal and fast neutrons. When using moderator (D_2O), the thickness of which is over 30 cm, more than 90% of the neutrons are thermalized. The bend angle of 20° produces more than 80% thermalized neutron beam. Both inserting moderator and bending channel are effective to extract thermalized neutron beam. These results are useful for designing a neutron source which can produce specified neutron beam.
机译:通过使用计算机仿真代码,MCNP研究了从圆柱形放电型融合装置提取的中子束的中子传输和能量组成。在这项研究中,提出并检查了三种中子束光学(反射器和主持人)的概念;组合反射器由两层不同的材料组成,将主持人插入反射器中以热化中子束,并弯曲提取通道以避免直接提取高能中子。当使用W和Fe作为外反射器时,组合的反射器系统产生的中子磁通量比没有反射器的3.2倍。光束收敛不依赖于反射器材料。聚乙烯(PE)和Fe组合产生快上的中子束,其中超过90%的中子速度快。 PE和D_2O的组合产生超过30%的热化中子束,但含有膜状和快中子。当使用主持人(D_2O)时,热化厚度超过30厘米,超过90%的中子。 20°的弯曲角度产生超过80%的热化中子束。插入主持人和弯曲通道都有效地提取热化中子束。这些结果对于设计可以产生特定中子束的中子源是有用的。

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  • 来源
    《Fusion Science and Technology》 |2013年第3期|692-696|共5页
  • 作者单位

    Institute of Advanced Energy Kyoto University: Gokasho Uji-City Kyoto 611-0011 Japan;

    Institute of Advanced Energy Kyoto University: Gokasho Uji-City Kyoto 611-0011 Japan;

    Graduate School of Energy Science Kyoto University: Yoshida-Honmachi Sakyo-ku Kyoto-City Kyoto 606-8501 Japan;

    Institute of Advanced Energy Kyoto University: Gokasho Uji-City Kyoto 611-0011 Japan;

    Faculty of Engineering Science Kansai University: 3-3-35 Yamate-cho Suita-shi Osaka 564-8680 Japan;

    Institute of Advanced Energy Kyoto University: Gokasho Uji-City Kyoto 611-0011 Japan;

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