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Numerical modeling of recuperative cryogenic matrix heat exchangers and the experimental validation

机译:换热式低温基体换热器的数值模型及实验验证

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The recuperative matrix heat exchanger (MHE) has advantages of large specific surface area, compactness, high effectiveness, and low flow resistance, which make it promising for applications in Joule Thomson cryocooler and reverse Brayton cryocooler. In this study, a numerical model is developed to predict the thermal performance of MHEs. The effects of axial conduction of both inner and outer walls as well as radial heat conduction through mesh-screens and the heat leakage are considered. The temperature distribution over the fluids and mesh screens in MHEs can be determined using this model. The model is validated by analytical solution of effectiveness-NTU method and the results of the experimental tests on two MHEs with different structures at cryogenic temperature. Using the proper correlations for heat transfer coefficients, the relative deviations of the ineffectiveness predictions from experimental results are below 13.2% in the mass flow range of 0.4 g/s - 2.1 g/s. The numerical results show that the axial conduction of inner and outer walls has similar effects on the thermal performance of MHEs. The increase of axial conduction can substantially lower the effectiveness of the MHEs at mass flow rates below 1 g/s, while the influence of the number of transfer unit (NTU) on the MHE effectiveness becomes dominant at mass flow rates above 1 g/s. (C) 2016 Elsevier Masson SAS. All rights reserved.
机译:换热矩阵热交换器(MHE)具有比表面积大,紧凑,高效和低流阻的优点,这使其有望在Joule Thomson低温冷却器和反向Brayton低温冷却器中应用。在这项研究中,开发了一个数值模型来预测MHE的热性能。考虑了内壁和外壁的轴向传导以及通过网筛的径向热传导和热泄漏的影响。可以使用此模型确定MHE中流体和网筛上的温度分布。通过有效性-NTU方法的解析解以及在低温下对两种结构不同的MHE的实验测试结果验证了该模型。使用传热系数的适当相关性,在0.4 g / s-2.1 g / s的质量流量范围内,无效性预测与实验结果的相对偏差低于13.2%。数值结果表明,内壁和外壁的轴向传导对MHE的热性能具有相似的影响。在质量流量低于1 g / s时,轴向传导的增加会显着降低MHE的效率,而在质量流量高于1 g / s时,传输单元(NTU)数量对MHE效率的影响将占主导地位。 (C)2016 Elsevier Masson SAS。版权所有。

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