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The prediction of bubble departure and lift-off radii in vertical U-shaped channel under subcooled flow boiling based on forces balance analysis

机译:基于力平衡分析的垂直U形通道中垂直U形通道中的气泡脱落和剥离半径的预测

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摘要

Bubble departure and lift-off phenomena as well as relevant pivotal parameters, including departure and lift-off radii, growth constants, and acting forces in a vertical U-shaped channel were studied by means of high-speed photography. To this goal, 68 experiments were conducted for subcooled flow boiling of distilled water at atmospheric pressure over a Nichrome heating surface installed on the outer wall of the vertical U-shaped channel, with heat flux ranging from 26.1 to 61.6 kW. m(-2), mass flux ranging from 114 to 255 kg. m(-2). s(-1), and inlet flow subcooling ranging from 1 to 8 degrees C. In order to develop new models for departure and lift-off radii the appropriate expressions for Radial pressure gradient force and Centrifugal force must be considered in forces balance analysis. The new obtained Force balance models were validated against the present experimental data. Moreover, these models were adapted to be capable of predicting the data reported in the literature for straight channels where the effect of radial pressure gradient is not present. Furthermore, the influence of flow conditions, involving wall heat flux, mass flux, and inlet flow temperature on departure and lift-off radii and growth constants were examined. The results demonstrated that increasing wall heat flux and inlet flow temperature leads to higher departure and lift-off radii, as well as the rise in bubble growth constants. Also, increasing mass flux contributes to the reduction in these radii and the rise in bubble growth constants. At the end, two correlations were developed to predict bubble departure and lift-off growth constants which unveiled a good agreement with associated experimental data.
机译:通过高速摄影研究了泡沫偏离和剥离现象以及包括脱落和剥离半径,包括垂直U形通道中的生长常数和作用力的相关枢转参数。为此目的,在大气压下在安装在垂直U形通道的外壁上的大气压下进行蒸馏水的蒸馏水的过冷流量沸腾,热通量范围为26.1至61.6 kW。 M(-2),质量磁通量为114至255千克。 m(-2)。 S(-1),进样速率从1到8摄氏度的速率范围范围为5至8摄氏度。为了开发出发和剥离半径的新模型,必须考虑用于平衡分析的径向压力梯度力和离心力的适当表达。新的获得力平衡模型验证了本实验数据。此外,这些模型适于能够预测在文献中报告的数据,用于径向压力梯度的效果不存在。此外,研究了流动条件,涉及壁热通量,质量磁通和入口流动温度对脱落和剥离半径和生长常数的影响。结果表明,增加壁热通量和入口流动温度导致较高的脱落和剥离半径,以及泡沫生长常数的升高。而且,增加质量磁通量有助于降低这些半径和泡沫生长常数的升高。最后,开发了两种相关性以预测与相关的实验数据良好的良好一致性的泡沫偏离和剥离生长常数。

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