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A new CHF model for enhanced pool boiling heat transfer on surfaces with micro-scale roughness

机译:一种新的CHF模型,用于增强微尺度粗糙度表面上的池沸腾传热

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摘要

A new CHF model was developed for saturated pool boiling on surfaces with micro-scale roughness, including micro-pillar, micro-ridge structures as well as random roughness made by emery paper or sandpapers. The model accounted for the effects of roughness-augmented wettability and capillary wicking on CHF enhancement. Geometric size parameters of well-defined micro structures were explicitly included in the correlation of present model, which was then extended to include randomly roughened surfaces based on the equivalent geometric sizes obtained from roughness parameter, Ra. The present model was evaluated by comparing with 104 CHF data in literatures with different working fluids, surface materials and surface morphologies. The results showed that present model could match most of the data within 25% and the overall mean absolute error was 13.7%. Particularly, the present model was capable of predicting the decrease trend of CHF with increase of roughness factor appeared in experimental studies and this trend was not reflected in previous models. The present study was expected to improve the understanding of CHF augmentation mechanism on micro-structured surfaces and to provide guidelines for optimal surface design.
机译:开发了一种新的CHF模型,用于在具有微尺度粗糙度的表面(包括微柱,微脊结构以及由砂纸或砂纸制成的随机粗糙度)上的饱和池沸腾。该模型考虑了粗糙度增加的润湿性和毛细管芯吸对CHF增强的影响。定义明确的微结构的几何尺寸参数明确包含在本模型的相关性中,然后根据从粗糙度参数Ra获得的等效几何尺寸扩展到随机粗糙化的表面。通过与文献中具有不同工作流体,表面材料和表面形态的104 CHF数据进行比较,对本模型进行了评估。结果表明,该模型可以在25%的范围内匹配大多数数据,总体平均绝对误差为13.7%。特别地,本模型能够预测随着实验研究中出现的粗糙度因子的增加,CHF的下降趋势,并且该趋势在以前的模型中未得到反映。预期本研究将改善对微结构表面上CHF增强机制的理解,并为最佳表面设计提供指导。

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