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THERMAL-HYDRAULIC CONCEPTUAL DESIGN OF WATER-COOLED BLANKET OF A FUSION-FISSION HYBRID REACTOR FOR ENERGY PRODUCTION

机译:裂变混合反应器水冷毛毯的热工概念设计

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A Thermal-hydraulic conceptual design of the energy production blanket for a fusion-fission hybrid reactor is proposed in this paper. The blanket uses U-10Zr alloy as its fuel, in which the uranium abundance is natural. It uses water as coolant as well as moderator, so that the Pu-239 bred from neutron capture reaction of U-238 can be depleted by thermal neutrons, while the fast neutrons can cause U-238 fission. A properly designed blanket needs no separation of Pu-239 from spent fuel, and makes full use of U-238 to produce energy. Based on the preliminary neutronic conceptual design of the blanket, a detailed blanket model has been established, and the distribution of deposited energy in it is calculated by MCNP. In this conceptual model, the. coolant flows in tubes, which go through from the bottom to the top of the blanket, and the fuel fills in the gap between tubes. A set of criteria have been developed for the thermal-hydraulic design, consequently the restrictions on tube size, wall thickness, pitches and power density are determined. The study on thermal-hydraulic characteristics of the blanket is carried out by the 3D computational fluid dynamic code FLUENT, in which the variation of transverse cross section due to the special geometry of Tokamak can be considered. The temperature and heat flux distribution at typical positions are analyzed, and the dependence of thermal-hydraulic performance on fuel-coolant volume ratio is discussed. It can conclude that the conceptual design proposed in this paper has satisfactory performances, all parameters satisfy the preset thermal-hydraulic criteria, and have large enough safety margin.
机译:提出了一种裂变混合反应堆的产能层的热工概念设计。毯子使用U-10Zr合金作为燃料,其中铀的含量很自然。它使用水作为冷却剂以及调节剂,从而使由U-238的中子俘获反应产生的Pu-239可以被热中子耗尽,而快中子会引起U-238裂变。设计合理的毯子无需将Pu-239与乏燃料分离,并且可以充分利用U-238产生能量。基于橡皮布的初步中子学概念设计,建立了详细的橡皮布模型,并通过MCNP计算了其中的沉积能量分布。在这个概念模型中,。冷却剂在管道中流动,这些管道从橡皮布的底部穿过到顶部,燃料填充管道之间的间隙。已经为热工液压设计制定了一套标准,因此确定了对管子尺寸,壁厚,节距和功率密度的限制。毯子的热工水力特性的研究是通过3D计算流体动力学代码FLUENT进行的,其中可以考虑由于Tokamak的特殊几何形状而引起的横截面变化。分析了典型位置的温度和热通量分布,讨论了热工性能对燃料-冷却剂体积比的依赖性。可以得出结论,本文提出的概念设计具有令人满意的性能,所有参数均满足预设的热工液压标准,并具有足够大的安全裕度。

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