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A deep burn fuel management strategy for the incineration of military plutonium in the gas turbine-modular helium reactor modeled in a detailed three-dimensional geometry by the Monte Carlo continuous energy burnup code

机译:用于在燃气轮机-模块化氦反应堆中焚烧军用的深层燃烧燃料管理策略,通过蒙特卡洛连续能量燃耗代码以详细的三维几何模型建模

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摘要

In the future development of nuclear energy, the graphite-moderated helium-cooled reactors may play an important role because of their valuable technical advantages: passive safety, low cost, flexibility in the choice of fuel, high conversion energy efficiency, high burnup, more resistant fuel cladding, and low power density. General Atomics possesses a long experience with this type of reactor, and it has recently developed the gas turbine-modular helium reactor (GT-MHR), a design where the nuclear power plant is structured into four reactor modules of 600 MW(thermal). Amid its benefits, the GT-MHR offers a rather large flexibility in the choice of fuel type; Th, U, and Pu may be used in the manufacture of fuel with some degrees of freedom. As a consequence, the fuel management may be designed for different objectives aside from energy production, e.g., the reduction of actinide waste production through a fuel based on thorium. In our previous studies we analyzed the behavior of the GT-MHR with a plutonium fuel based on light water reactor (LWR) waste; in the present study we focused on the incineration of military Pu. This choice of fuel requires a detailed numerical modeling of the reactor since a high value of k(eff) at the beginning of the reactor operation requires the modeling both of control rods and of burnable poison; by contrast, when the GT-MHR is fueled with LWR waste, at the equilibrium of the fuel composition, the reactivity swing is small.
机译:在未来的核能发展中,石墨缓和氦冷却反应堆可能会发挥重要作用,因为它们具有宝贵的技术优势:被动安全,低成本,燃料选择的灵活性,高转换能效,高燃耗,更多耐燃料包壳,功率密度低。通用原子公司在这种类型的反应堆上拥有丰富的经验,最近它开发了燃气轮机模块化氦反应堆(GT-MHR),该设计将核电站构造成四个600兆瓦(热)反应堆模块。 GT-MHR具有诸多优点,在选择燃料类型方面具有相当大的灵活性。 Th,U和Pu可以一定程度的自由度用于制造燃料。结果,除了能量产生之外,燃料管理可以被设计用于不同的目的,例如,通过基于based的燃料减少act系元素废物的产生。在我们以前的研究中,我们分析了基于轻水反应堆(LWR)废物的with燃料与GT-MHR的行为;在本研究中,我们集中于焚烧军事military。这种燃料的选择需要对反应堆进行详细的数值建模,因为在反应堆运行开始时的高k(eff)值需要对控制棒和可燃毒物进行建模。相反,当用轻水堆废物为GT-MHR燃料时,在燃料组成的平衡下,反应性摆动很小。

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