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Experimental and numerical study on thermal‐hydraulic performance of printed circuit heat exchanger for liquefied gas vaporization

机译:印刷电路热交换器热液化液化气蒸发的实验与数值研究

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The thermal‐hydraulic performance of printed circuit heat exchanger (PCHE) through an experimental vaporization process of supercritical nitrogen was investigated. The inlet temperature of supercritical nitrogen was controlled between 113?K and 129?K, while its pressure was controlled between 4.5?MPa and 6?MPa. The mass of supercritical nitrogen corresponds to the turbulent state on the cold side of PCHE, which was maintained at 299.94?kg/h. A numerical processing of the same supercritical nitrogen flow through a single channel of PCHE cold side was presented. The numerical results were validated by comparison with the experimental data. Both experimental and numerical results showed that the increased inlet supercritical nitrogen pressure improved the heat transfer performance and pressure drop decreased with increasing the pressure at the PCHE cold side. Furthermore, the Fanning friction coefficient (f) and the Nusselt number (Nu) of supercritical nitrogen flow obtained by numerical simulation and empirical correlation were compared.
机译:研究了通过超临界氮的实验汽化过程的印刷电路热交换器(PCHE)的热液压性能。超临界氮气的入口温度在113Ωk和129?k之间控制,而其压力在4.5℃和6℃之间控制。超临界氮的质量对应于PCHE冷侧的湍流状态,其保持在299.94Ωkg / h。提出了通过单个PCHE冷侧通道的相同超临界氮流的数值处理。通过与实验数据进行比较验证了数值结果。两种实验和数值结果表明,随着PCHE冷侧的压力,增加的入口超临界氮气压力提高了传热性能和压降降低。此外,比较了通过数值模拟和经验相关获得的超临界氮流的扇形摩擦系数(F)和露珠数(Nu)。

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