Bolin Hu , Qingguo Lin , Ting Li , Weifeng Li , Haifeng Liu , Fuchen Wang
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In addition, the onset, enhancement, and disappearance of boiling cause the expansion and contraction of liquid film. The splashing rate is barely affected by jet parameters and remains within the range of 80–95 % under all conditions. The propagation of wetting fronts exhibits anisotropy. Except for the impingement distance, the position of wetting fronts along <em>y</em>-axis direction displays a high dependence on all parameters. The <em>Re</em><sub>j</sub> and nozzle diameter have a significant effect on the heat flux at the impingement point and parallel flow zone, while the jet inclination angle and impingement distance only effect the impingement point. The visualization image proves that the droplet impingement pattern is the main reason for the increase in heat flux at higher impingement distances. Optimizing jet parameters can promote the wall to enter the rapid cooling stage in advance and increase maximum heat flux, thereby improving the maximum cooling capacity of the jet. Finally, an empirical equation is proposed to predict the maximum Nusselt number.</div></div>","PeriodicalId":336,"journal":{"name":"International Journal of Heat and Mass Transfer","volume":"236 ","pages":"Article 126387"},"PeriodicalIF":5.0000,"publicationDate":"2024-11-04","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Flow behavior and heat transfer characteristics of liquid film on vertical hot surface by inclined jet impingement\",\"authors\":\"Bolin Hu , Qingguo Lin , Ting Li , Weifeng Li , Haifeng Liu , Fuchen Wang\",\"doi\":\"10.1016/j.ijheatmasstransfer.2024.126387\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>In this study, the flow behavior and heat transfer characteristics of the liquid film on the hot wall by inclined jet impingement are experimentally studied in detail. The effects of jet parameters, such as jet inclination angle, impingement distance, jet Reynolds number (<em>Re</em><sub>j</sub>), and nozzle diameter are explored. The liquid film flow is visualized using a high-speed camera, and the surface temperature and heat flux are obtained by solving the inverse heat conduction problem. The results indicate that the liquid film shape is strongly affected by jet inclination angle but is almost unaffected by other parameters. As the inclination angle increases, the liquid film shape changes from elliptical to fusiform. In addition, the onset, enhancement, and disappearance of boiling cause the expansion and contraction of liquid film. The splashing rate is barely affected by jet parameters and remains within the range of 80–95 % under all conditions. The propagation of wetting fronts exhibits anisotropy. Except for the impingement distance, the position of wetting fronts along <em>y</em>-axis direction displays a high dependence on all parameters. The <em>Re</em><sub>j</sub> and nozzle diameter have a significant effect on the heat flux at the impingement point and parallel flow zone, while the jet inclination angle and impingement distance only effect the impingement point. The visualization image proves that the droplet impingement pattern is the main reason for the increase in heat flux at higher impingement distances. Optimizing jet parameters can promote the wall to enter the rapid cooling stage in advance and increase maximum heat flux, thereby improving the maximum cooling capacity of the jet. 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引用次数: 0
摘要
本研究通过实验详细研究了倾斜射流撞击热壁上液膜的流动行为和传热特性。研究探讨了射流参数(如射流倾角、撞击距离、射流雷诺数 (Rej) 和喷嘴直径)的影响。使用高速摄像机对液膜流动进行了观察,并通过求解逆热传导问题获得了表面温度和热通量。结果表明,液膜形状受喷射倾角的影响很大,但几乎不受其他参数的影响。随着倾角的增大,液膜形状从椭圆形变为纺锤形。此外,沸腾的开始、增强和消失也会导致液膜的膨胀和收缩。飞溅率几乎不受喷射参数的影响,在所有条件下都保持在 80-95 % 的范围内。润湿前沿的传播呈现各向异性。除撞击距离外,润湿前沿 Y 轴方向的位置与所有参数都有很大关系。Rej 和喷嘴直径对撞击点和平行流区的热通量有显著影响,而射流倾角和撞击距离仅对撞击点有影响。可视化图像证明,液滴撞击模式是撞击距离越远热通量越高的主要原因。优化射流参数可以促进壁面提前进入快速冷却阶段,增加最大热通量,从而提高射流的最大冷却能力。最后,提出了预测最大努塞尔特数的经验方程。
Flow behavior and heat transfer characteristics of liquid film on vertical hot surface by inclined jet impingement
In this study, the flow behavior and heat transfer characteristics of the liquid film on the hot wall by inclined jet impingement are experimentally studied in detail. The effects of jet parameters, such as jet inclination angle, impingement distance, jet Reynolds number (Rej), and nozzle diameter are explored. The liquid film flow is visualized using a high-speed camera, and the surface temperature and heat flux are obtained by solving the inverse heat conduction problem. The results indicate that the liquid film shape is strongly affected by jet inclination angle but is almost unaffected by other parameters. As the inclination angle increases, the liquid film shape changes from elliptical to fusiform. In addition, the onset, enhancement, and disappearance of boiling cause the expansion and contraction of liquid film. The splashing rate is barely affected by jet parameters and remains within the range of 80–95 % under all conditions. The propagation of wetting fronts exhibits anisotropy. Except for the impingement distance, the position of wetting fronts along y-axis direction displays a high dependence on all parameters. The Rej and nozzle diameter have a significant effect on the heat flux at the impingement point and parallel flow zone, while the jet inclination angle and impingement distance only effect the impingement point. The visualization image proves that the droplet impingement pattern is the main reason for the increase in heat flux at higher impingement distances. Optimizing jet parameters can promote the wall to enter the rapid cooling stage in advance and increase maximum heat flux, thereby improving the maximum cooling capacity of the jet. Finally, an empirical equation is proposed to predict the maximum Nusselt number.
期刊介绍:
International Journal of Heat and Mass Transfer is the vehicle for the exchange of basic ideas in heat and mass transfer between research workers and engineers throughout the world. It focuses on both analytical and experimental research, with an emphasis on contributions which increase the basic understanding of transfer processes and their application to engineering problems.
Topics include:
-New methods of measuring and/or correlating transport-property data
-Energy engineering
-Environmental applications of heat and/or mass transfer