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Experimental Study of Inclination on Non-Boiling Regime Spray Cooling

机译:非沸腾喷雾冷却的倾斜实验研究

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Based on the maximum CHF (critical heat flux) criterion, an optimal heat transfer criterion, which is called H criterion, was proposed. Experimental apparatuses were conducted. Distilled water was used as the working fluid. Three different DANFOSS nozzles with cone angles being 54°, 50° and 54° respectively were used. A 30×30mm~2 square copper surface was used as the heated surface. Experimental results indicated that the volumetric fluxes were proportioned to P~(0.5), where P is the pressure drop across the nozzles. The optimal distance between the nozzles and the heated surface were derived. The results indicated that the optimal heat transfer appeared while the outside of the impellent thin spray film inscribed in the square heated surface.Based on the H criterion aforementioned, two DANFOSS nozzles of the three, with cone angles being 54°and 50°respectively, were used to study the temperature distribution of the heated surface while there were spray inclination angles during spray cooling experiments. Distilled water was also used impacting on the 30×30mm~2 square copper surface aforementioned and a circular heated copper surface with diameters being 30mm respectively. The heat flux of the surface was kept in constant (about 26-35W/cm~2). The inclination angles were 0°, 10°, 20°, 30°, 40° and 50° respectively. Threethermocouples imbedded in the heated surface were used to predict the grads of the temperature of the surface. Experimental results indicated that the temperature and the grads of the temperature of the surface increases first and then decreases with the increase of the inclination angle.
机译:基于最大CHF(临界热通量)准则,提出了一种最优的传热准则,称为H准则。进行实验设备。蒸馏水用作工作流体。使用了三种锥角分别为54°,50°和54°的DANFOSS喷嘴。将30×30mm〜2平方的铜表面用作加热表面。实验结果表明,体积流量与P〜(0.5)成正比,其中P为喷嘴两端的压降。得出喷嘴和加热表面之间的最佳距离。结果表明,最佳的传热出现在喷射薄喷膜的外部接在方形加热表面上时。 根据上述H准则,使用三个DANFOSS喷嘴中两个的锥角分别为54°和50°来研究加热表面的温度分布,而在喷雾冷却实验中存在喷雾倾斜角。还使用蒸馏水冲击上述30×30mm〜2平方的铜表面和直径分别为30mm的圆形加热的铜表面。表面的热通量保持恒定(约26-35W / cm〜2)。倾斜角分别为0°,10°,20°,30°,40°和50°。三 嵌入被加热表面中的热电偶被用来预测表面温度的梯度。实验结果表明,表面温度和温度梯度随倾角的增加先升高后降低。

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