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Numerical Prediction of Conjugate Heat Transfer in Fluid Network

机译:流体网络中共轭传热的数值预测

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摘要

An unsteady finite volume procedure for conjugate heat transfer in a flow network is presented that takes into account the longitudinal conduction through the solid. It uses a fully coupled approach in which the governing equations for solid and fluid are coupled through solid-to-fluid heat transfer that is expressed as a function of flow properties and temperature of the solid. As an evaluation of the proposed technique, a chilldown problem for a cryogenic transfer line is formulated and solved. Test cases modeling transient flow of liquid hydrogen and liquid nitrogen under saturated and subcooled liquid conditions are presented. The effects of varying the inlet driving pressure on the chilldown time and flow rates have been evaluated. Increasing the driving pressure decreases the chilldown time and increases the flow rate. Subcooling the inlet cryogen further reduces the chilldown time. Numerical predictions are compared with available experimental data and are found to be in good agreement. The proposed model captures the essential features of conjugate heat transfer and provides an efficient and robust way for predicting chilldown of transfer line at a low computational cost.
机译:提出了考虑流经固体的纵向传导的非稳定有限体积程序,用于流动网络中的共轭传热。它使用一种完全耦合的方法,其中固体和流体的控制方程通过固-液传热耦合,该传热表示为固体的流动特性和温度。作为对提出的技术的评估,制定并解决了低温传输线的冷却问题。提出了在饱和和过冷液体条件下模拟液态氢和液态氮瞬态流动的测试案例。已经评估了改变进气驱动压力对冷却时间和流速的影响。增加驱动压力会减少冷却时间并增加流量。冷却进口制冷剂会进一步缩短冷却时间。将数值预测与可用的实验数据进行了比较,发现它们具有很好的一致性。所提出的模型捕获了共轭传热的基本特征,并提供了一种有效且鲁棒的方式来以较低的计算成本来预测传输线的冷却时间。

著录项

  • 来源
    《Journal of propulsion and power》 |2011年第3期|p.620-630|共11页
  • 作者

    Alok Majumdar; S. S. Ravindran;

  • 作者单位

    NASA Marshall Space Flight Center, Huntsville, Alabama 35812;

    University of Alabama in Huntsville, Huntsville, Alabama 35899;

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  • 正文语种 eng
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