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PRESSURE-BASED PREDICTION OF SINGLE PHASE SPRAY COOLING HEAT TRANSFER COEFFICIENT FOR LOW PRANDTL NUMBER LIQUIDS

机译:低普朗特数液体单相喷墨传热系数的基于压力的预测

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One of the main challenges of spray cooling technology is the prediction of local and average heat transfer coefficients on the heater surface. It is hypothesized that the local heat transfer coefficient can be predicted from the local normal pressure produced by the spray. In this study, hollow cone, full cone, and flat fan sprays operated at three standoff distances, five spray pressures, and two nozzle orientations were used to identify the relation between impingement pressure and heat transfer coefficient in the single phase regime. PF-5060, PAO-2, and PSF-3 were used as test fluids, resulting in Prandtl number variation between 12 to 75. A micro-heater array operated at constant temperature was used to measure the local heat flux. A separate test rig was used to make impingement pressure measurements for the same geometry and spray pressure. The heat flux data were then compared with the corresponding impingement pressure data to develop a pressure-based correlation for spray cooling heat transfer. The maximum deviation between the experimental data and prediction was within ±25%.
机译:喷雾冷却技术的主要挑战之一是预测加热器表面上的局部和平均传热系数。假设可以从喷雾产生的局部正常压力预测局部传热系数。在本研究中,使用在三个静止距离,五个喷射压力和两个喷嘴方向上操作的空心锥形,完整的锥形和扁平风扇喷雾器来识别单相状态中冲击压力和传热系数之间的关系。 PF-5060,PaO-2和PSF-3用作测试流体,导致普兰特数差12至75。在恒定温度下操作的微加热器阵列用于测量局部热通量。用于对相同的几何形状和喷射压力进行撞击压力测量的单独的试验台。然后将热通量数据与相应的冲击压力数据进行比较,以制定用于喷射冷却热传递的基于压力的相关性。实验数据和预测之间的最大偏差在±25%范围内。

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