scholarly journals Flow condensation pressure drop characteristics of zeotropic mixtures of tetrafluoromethane/ethane: Experimental and analytical investigation

Author(s):  
Qinglu Song ◽  
Dechang Wang ◽  
Jun Shen ◽  
Yanxing Zhao ◽  
Maoqiong Gong
2010 ◽  
Vol 16 (4) ◽  
pp. 453-470 ◽  
Author(s):  
Xiangchao Huang ◽  
Guoliang Ding ◽  
Haitao Hu ◽  
Yu Zhu ◽  
Yifeng Gao ◽  
...  

2016 ◽  
Vol 68 ◽  
pp. 226-241 ◽  
Author(s):  
Dariusz Mikielewicz ◽  
Jan Wajs ◽  
Rafał Andrzejczyk ◽  
Michał Klugmann

2021 ◽  
Author(s):  
Abdolali K Sadaghiani

Microchannels have increasingly been used to miniaturize heat transfer equipment, improve energy efficiency, and minimize heat transfer fluid inventory. A fundamental understanding of condensation in microscale will yield far-reaching benefits for the different areas of industry. In this study, microtubes with inner diameters of 250, 500, 600, and 900 µm were used to investigate the effect of microtube diameter, inlet quality, and mass flux on the liquid/vapor interface near the wall boundaries in condensing flow. After validation with the experimental results, a transient numerical model (based on the volume of fluid approach) was developed to investigate the hydrothermal properties of condensing such as bubble dynamics, flow map transitions, transient interface shear force, and temperature on flow condensation performance in terms of heat transfer coefficient and pressure drop. The liquid film thickness, slug velocity, and location of transition from annular flow to slug flow inside the microtube were characterized for different microtubes, and the resultant alteration in condensation flow heat transfer and pressure drop is discussed in detail. The obtained results indicated that the interfacial characteristics of condensing flow in microtubes with hydraulic diameters lower than 500µm are majorly different from those with D>500µm.


2015 ◽  
Vol 138 (2) ◽  
Author(s):  
Zan Wu ◽  
Bengt Sundén

Experimental single-phase, condensation, and evaporation (flow boiling) pressure drop data from the literature and our previous studies were collected to evaluate previous frictional pressure drop correlations for horizontal microfin tubes of different geometries. The modified Ravigururajan and Bergles correlation, by adopting the Churchill model to calculate the smooth-tube friction factor and by using the hydraulic diameter in the Reynolds number, can predict single-phase turbulent frictional pressure drop data relatively well. Eleven pressure drop correlations were evaluated by the collected database for condensation and evaporation. Correlations originally developed for condensation and evaporation in smooth tubes can be suitable for microfin tubes if the friction factors in the correlations were calculated by the Churchill model to include microfin effects. The three most accurate correlations were recommended for condensation and evaporation in microfin tubes. The Cavallini et al. correlation and the modified Friedel correlation can give good predictions for both condensation and evaporation. However, some inconsistencies were found, even for the recommended correlations.


2010 ◽  
Vol 33 (7) ◽  
pp. 1356-1369 ◽  
Author(s):  
Xiangchao Huang ◽  
Guoliang Ding ◽  
Haitao Hu ◽  
Yu Zhu ◽  
Yifeng Gao ◽  
...  

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