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首页> 外文期刊>International Journal of Heat and Mass Transfer >A mechanistic model for nucleate pool boiling including the effect of bubble coalescence on area fractions
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A mechanistic model for nucleate pool boiling including the effect of bubble coalescence on area fractions

机译:成核池煮沸的机械模型,包括泡泡聚结对面积分数的影响

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A mechanistic model that includes the effect of the bubble coalescence on nucleate pool boiling heat transfer is developed through experimental and theoretical investigations. Transient temperature and heat flux distributions on the boiling surface are obtained using a high-speed infrared imaging technique. According to the temperature and heat flux distributions, the boiling surface is classified into three regions: natural convection, quenching, and evaporation regions. By observing how the heat flux on each region and the corresponding area fraction change as the bubble coalescence occurs, the effect of the bubble coalescence on nucleate pool boiling is investigated. It is found that the bubble coalescence does not affect the heat fluxes on the three regions but affects the area fractions: As the bubble coalescence occurs, the rates of increase in quenching and evaporation area fractions with respect to the wall superheat decrease, while the natural convection area fraction remains the same. By accounting for the effect of the bubble coalescence on quenching and evaporation area fractions, a new correlation of the boiling heat flux is developed and presented. To validate the proposed model, boiling curves for saturated water and FC-72 are reproduced and compared to experimental data. The most distinguishing feature of the model is that it accurately predicts the rate of change of the heat flux with respect to the wall superheat as well as the location of the inflection point at which the slope of the boiling curve begins to decrease. As a result, the error between the reproduced boiling curve and experimental data is reduced by 94% compared to the previous model, which does not include the effect of the bubble coalescence for both water and FC-72.
机译:通过实验和理论研究开发了一种机械模型,包括泡泡聚结对核心池沸腾热传递的影响。使用高速红外成像技术获得沸腾表面上的瞬态温度和热通量分布。根据温度和热通量分布,沸腾表面被分为三个区域:自然对流,淬火和蒸发区。通过观察每个区域上的热量和相应的面积分数变化的热量如何发生,研究了气泡聚结对核心池沸腾的影响。发现气泡聚结不会影响三个区域的热量,但影响面积分数:当气泡聚结发生时,淬火和蒸发面积馏分的速率相对于壁过热降低,而自然对流区域分数保持不变。通过对气泡聚结对淬火和蒸发面积级分的影响进行算法,开发并呈现了沸腾热通量的新相关性。为了验证所提出的模型,再现饱和水和FC-72的沸腾曲线与实验数据相比。模型的最显着的特征是它准确地预测了相对于壁过热的热通量的变化率以及沸腾曲线斜率开始减小的拐点的位置。结果,与先前的模型相比,再生沸点曲线和实验数据之间的误差减少了94%,其不包括水和Fc-72的气泡聚结的效果。

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