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Two-phase convection heat transfer correlations for liquid hydrogen pipe chilldown

机译:液体氢气管寒冷的两相对流传热相关性

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Recently, heat transfer correlations based on liquid nitrogen (LN2) and liquid hydrogen (LH2) pipe quenching data were developed to improve the predictive accuracy of lumped node codes like SINDA/FLUINT and the Generalized Fluid System Simulation Program (GFSSP). After implementing these correlations into both programs, updated model runs showed strong improvement in LN2 pipe chilldown modeling but only modest improvement in LH2 chilldown modeling. Due to large differences in thermal and fluid properties between the two fluids, results indicated a need to develop a separate set of LH2-only correlations to improve the accuracy of the simulations. This paper presents a new set of two-phase convection heat transfer correlations based on LH2 pipe quenching data. A correlation to predict the bulk vapor temperature was developed after analysis showed that large departures from thermal equilibrium between the liquid and vapor phases occurred during film boiling of LH2. Implemented in a numerical model, the new correlations achieve a mean absolute error of 19.5 K in the predicted wall temperature when compared to recent LH2 pipe chilldown data-an improvement of 40% over recent GFSSP predictions. This set of correlations can be implemented in simulations of the transient LH2 chilldown process. Such simulations are useful for predicting the chilldown time and boil-off mass of LH2 for applications such as the transfer of LH2 from a ground storage tank to the rocket vehicle propellant tank, or through a rocket engine feedline during engine startup.
机译:最近,基于液氮(LN2)和液态氢气(LH2)管淬火数据的传热相关性以提高SINDA / FLUINT和广义流体系统仿真程序(GFSSP)等集总节点代码的预测精度。在将这些相关性进入两个程序之后,更新的模型运行显示LN2管道寒冷模型的强大改进,但LH2 Chilldown建模只有适度的改进。由于两种流体之间的热和流体性质的差异很大,结果表明需要开发一个单独的LH2相关关系,以提高模拟的准确性。本文介绍了基于LH2管道淬火数据的新一组两相对流传热相关性。在分析后开发了与预测体蒸汽温度的相关性,显示出在LH 2的薄膜沸腾期间发生液体和蒸汽相之间的热平衡的大偏离。与最近LH2管道寒冷数据相比,新相关性在数值模型中实现了19.5克的平均绝对误差,而最近的LH2管道寒冷数据 - 最近的GFSSP预测的提高了40%。这组相关性可以在瞬态LH2寒冷过程的模拟中实现。这种模拟对于预测LH2的寒冷时间和蒸发质量,例如从地储罐转移到火箭车辆推进剂箱,或通过发动机启动期间的火箭发动机馈线。

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