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Neutronic Analysis of LBE-Uranium Spallation Target Accelerator Driven System Loaded with Uranium Dioxide in TRISO Particles

机译:TRISO颗粒中负载二氧化铀的LBE-铀散裂靶加速器驱动系统的中子学分析

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摘要

This study presents the neutronic performances of fissile breeding and energy production of a gas cooled accelerator-driven system with LBE-uranium dioxide (UO2) spallation target. The accelerator-driven system is designed and optimized by considering various target materials, in terms of neutronic. Two different materials, LBE + natural UO2 and LBE + 15% enrichment UO2 are selected as target materials. The target zone is divided into two parts, one within the other; the outer part is pure LBE target part, and the inner part is UO2 target part cooled with the helium gas. Tristructural-isotropic (TRISO)-coated fuel particles, containing UO2 fuel, are embedded in a carbon matrix pebble with the packing fraction of a 29%, and the pebbles are placed in the UO2 target part and in the fuel core with the packing fraction of a 60%. The fuel core is cooled with helium that is a high-temperature coolant. The target is bombarded with the continuous beams of a 1 GeV protons to produce high-flux neutrons that enter the fuel core. The fuel core is surrounded with a graphite reflector zone serving as both effective moderation and reflection of these neutrons. Furthermore, the whole system is enclosed by boron carbide, B4C (shielding zone), to prevent the neutrons leakage out of the accelerator-driven system. The high-energy Monte Carlo code MCNPX along with the LA150 library is used for neutronic calculations. The numerical results bring out that the investigated accelerator-driven system has a high neutronic performance, from the energy production and fissile breeding points of view. Namely, it can be obtained over the thermal power of a 350 MW and produced over the fissile breeding of a 300 g/day.
机译:这项研究提出了具有LBE-二氧化铀(UO2)散裂靶的气冷加速器驱动系统的裂变繁殖和能量生产的中子学性能。加速器驱动系统是通过考虑各种目标材料(中子学)来设计和优化的。选择两种不同的材料LBE +天然UO2和LBE + 15%浓缩UO2作为目标材料。目标区域分为两部分,一个部分在另一个部分内;外部是纯LBE目标部分,内部是用氦气冷却的UO2目标部分。包含UO2燃料的涂有三方各向同性(TRISO)的燃料颗粒被埋入填充率为29%的碳基质卵石中,并将该卵石放置在UO2目标部分和填充率为燃料芯中占60%。燃料芯被作为高温冷却剂的氦冷却。用1 GeV质子的连续束轰击目标,产生进入燃料堆芯的高通量中子。燃料芯被石墨反射器区域包围,该反射器区域既可有效调节中子,又可反射中子。此外,整个系统被碳化硼B4C(屏蔽区)封闭,以防止中子从加速器驱动系统中泄漏出来。高能蒙特卡罗代码MCNPX和LA150库一起用于中子学计算。数值结果表明,从能量产生和裂变繁殖的角度来看,研究的加速器驱动系统具有很高的中子性能。即,可以在350MW的热功率下获得,并在300g /天的裂变繁殖下产生。

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  • 来源
    《Acta Physica Polonica》 |2016年第1期|30-32|共3页
  • 作者单位

    Cumhuriyet Univ, Enerji Sistemleri Muhendisligi Anabilimdali, Sivas, Turkey;

    Erciyes Univ, Enerji Sistemleri Muhendisligi Bolumu, Kayseri, Turkey;

    Erciyes Univ, Enerji Sistemleri Muhendisligi Bolumu, Kayseri, Turkey;

    Erciyes Univ, Enerji Sistemleri Muhendisligi Bolumu, Kayseri, Turkey;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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