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Thermal-hydraulic analysis of the HCLL DEMO blanket

机译:HCLL DEMO橡皮布的热工液压分析

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The present design of the helium-cooled lithium-lead (HCLL) blanket foresees the successive cooling of three sub-components (the first wall, the stiffening grid, and the breeder cooling plates) by parallel He-cooling channels. The optimisation of the coolant flow is complicated by the fact that the heat recovered by the cooling elements depends on the coolant parameters (temperature, velocity, heat exchange coefficient). Since all these parameters are intrinsically related, the classical approach of obtaining the coolant temperature distribution by enthalpy balance and using this distribution as an input for finite element analyses cannot be used. In this paper we present new finite elements models of the blanket that allow to obtain the temperature distribution in the coolant on the basis of the detailed power density distribution in the surrounding structures. At the same time, the models allow to improve the description of the heat transfer between the solid walls and the coolant. A review of the most used correlations available in literature to estimate the heat transfer coefficient has then been performed and the most appropriate one has been selected. The new models have been used to carry out a thermal-hydraulic analysis of the cooling system of the HCLL breeding blanket. Moreover, an estimation of the pressure drops in the different cooling elements has been made. The obtained results are discussed in terms of differences with those obtained in previous analyses and of the consequences on the blanket design.
机译:氦冷却锂铅(HCLL)毯的当前设计预见将通过平行的He冷却通道连续冷却三个子组件(第一壁,加强格栅和饲养板冷却板)。由于冷却元件回收的热量取决于冷却剂参数(温度,速度,热交换系数),因此使冷却剂流量最优化变得很复杂。由于所有这些参数本质上都是相关的,因此无法使用通过焓平衡获得冷却剂温度分布并将该分布用作有限元分析输入的经典方法。在本文中,我们介绍了橡皮布的新有限元模型,这些模型允许根据周围结构中详细的功率密度分布来获得冷却液中的温度分布。同时,这些模型可以改进对固体壁和冷却剂之间的热传递的描述。然后,对文献中最常用的相关性进行了评估,以估算传热系数,并选择了最合适的相关性。新模型已用于对HCLL繁殖毯的冷却系统进行热工水力分析。此外,已经估计了不同冷却元件中的压降。讨论了所得结果与先前分析中所得结果的差异以及对毯子设计的影响。

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