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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Numerical study on a novel hyperbolic inlet header in straight-channel printed circuit heat exchanger
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Numerical study on a novel hyperbolic inlet header in straight-channel printed circuit heat exchanger

机译:直沟道印刷电路热交换器新型双曲面集管的数值研究

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Printed circuit heat exchangers (PCHEs) can be used as the recuperator and condenser in the supercritical CO2 (sCO(2)) Brayton cycle of fast cooled reactor (FCR) systems. Most researchers focused on heat transfer improvement of the core structure in previous literatures. However, the flow non-uniformity may seriously decrease the comprehensive performance of PCHEs by increasing the pressure loss. The sCO(2) temperature in partial channels may be lower than the pseudo-critical temperature due to non-uniform flow distribution. Thereby, it is possible that the condenser may deviate from the steady operating condition and work inefficiently. In this paper, the flow non-uniformity of a straight-channel PCHE condenser with four different inlet headers is analyzed. Based on the streamline profile, a novel modified hyperbolic inlet header is proposed, which can reduce the flow non uniformity by 46% compared with the current practical manufactured model. Simultaneously, the improvement of flow uniformity by the novel inlet header may increase the overall performance by 39.5%. Furthermore, the effect of core length is also investigated, and it is found that the flow non-uniformity can be minimized by varying the core length. Additionally, the relationship between the standard deviation of flow non-uniformity and the shape factor is quantitatively investigated and analyzed. Result shows that the flow non-uniformity can be expressed as a function of the shape factor and dimensionless core length. Finally, the correlations of the thermo-hydraulic performance of the straight-channel PCHE with corrections for flow non-uniformity are proposed.
机译:印刷电路热交换器(PCHE)可用作超临界CO2(SCO(2))Brayton循环的快速冷却反应器(FCR)系统的恢复器和冷凝器。大多数研究人员专注于以前文献中的核心结构的传热改善。然而,通过增加压力损失,流动不均匀性可能会严重降低PCHE的综合性能。由于不均匀的流分布,部分通道中的SCO(2)温度可以低于伪临界温度。由此,冷凝器可以偏离稳定的操作条件和工作效率低下。在本文中,分析了具有四个不同入口头的直通道PCHE冷凝器的流动不均匀性。基于流线轮廓,提出了一种新型改性双曲型入口报头,与目前的实际制造模型相比,这可以将流量不均匀降低46%。同时,新型入口集管的流动均匀性的改善可以将整体性能提高39.5%。此外,还研究了芯长度的效果,并且发现通过改变芯长度可以最小化流动不均匀性。另外,定量地研究和分析了流量不均匀性和形状因子的标准偏差之间的关系。结果表明,流不均匀性可以表示为形状因子和无量纲核心长度的函数。最后,提出了直通通道PCHE与流动不均匀性校正的热液压性能的相关性。

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