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Numerical research on heat transfer enhancement for high Prandtl-number fluid

机译:高普朗特数流体传热强化的数值研究

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The molten salt, Flibe, has been recommended as a candidate coolant material in the blanket system of the FFHR fusion reactor though it is high Prnadtl-number (Pr) fluid that leads to low heat transfer performance. This paper, describes the results of numerical simulations performed in order to estimate the effects of cylinders as obstructions for heat-transfer enhancement in high-Pr fluid duct flow. Two-dimensional thermofluid simulations were performed for cases with 44, 24 and 48 cylinders, respectively, inserted perpendicularly to the fluid flow, and acting as heat transfer enhancers between parallel plates. From these analyses, the flow contraction created by the cylinders causes a high-vorticity around the heated wall. This high-vorticity plays an important role in the heat-transfer enhancement. In the high-vorticity region, the momentum perpendicular to a wall has a large gradient along the stream direction. In fact, the fluid flows down while rotating and "washing" the heated wall. This effect is also governed by the arrangement of cylinders. A staggered arrangement is adopted in the case with 44 cylinders, while square arrangement is employed in the cases with 24 and 48 cylinders. The enhancement of perpendicular flow is very effective when using a staggered arrangement, procuring a higher heat transfer downstream of the cylinders. The estimated pressure drop for high-Pr fluid flow was larger for the with 44 cylinders than for the cases with 24 and 48 cylinders. This result indicates that the heat transfer of high-Pr fluid flow strongly depends on the effect of flow stirring caused by obstructions.
机译:尽管熔融盐Flibe是高Prnadtl数(Pr)流体,导致较低的传热性能,但已推荐将其用作FFHR聚变反应堆毯罩系统中的候选冷却剂材料。本文介绍了进行数值模拟的结果,以便估计气缸对高Pr流体导管流动中传热增强的阻碍作用。分别对44个,24个和48个圆柱体垂直于流体流动并充当平行板之间的传热增强器的情况进行了二维热流体模拟。根据这些分析,由圆柱体产生的流动收缩会在加热壁周围引起高涡度。这种高涡度在热传递增强中起着重要作用。在高涡度区域中,垂直于壁的动量沿流向具有较大的梯度。实际上,在旋转和“清洗”加热的壁时,流体向下流动。这种效果也受气缸布置的影响。在具有44个气缸的情况下采用交错布置,而在具有24和48个气缸的情况下采用正方形布置。当使用交错布置时,垂直流的增强非常有效,在气缸下游实现更高的热传递。高Pr流体流量的估计压降在使用44个气缸的情况下要比使用24和48个气缸的情况大。该结果表明,高Pr流体的热传递强烈地取决于阻塞引起的流动搅拌的效果。

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