Author
Listed:
- Yi-Nan Zhang
(The Energy Power and Mechanical Engineering Department, North China Electric Power University, Beijing 102206, China)
- Guo-Qing Huang
(The Energy Power and Mechanical Engineering Department, North China Electric Power University, Beijing 102206, China)
- Lu-Ming Zhao
(The Energy Power and Mechanical Engineering Department, North China Electric Power University, Beijing 102206, China)
- Hong-Xia Chen
(The Energy Power and Mechanical Engineering Department, North China Electric Power University, Beijing 102206, China
Key Laboratory of Power Station Energy Transfer Conversion and System of Ministry of Education, North China Electric Power University, Beijing 102206, China)
Abstract
The evaporation dynamics of droplets on smooth and inclined micro-pillar surfaces were experimentally investigated. The surface temperature was increased from 50 °C to 120 °C, with the inclination angles being 0°, 30°, 45°, and 60° respectively. The dynamic parameters, including contact area, nucleation density, bubble stable diameter, and droplet asymmetry, were recorded using two high-speed video cameras, and the corresponding evaporation performance was analyzed. Experimental results showed that the inclination angle had a significant influence on the evaporation of micro-pillar surfaces than smooth surfaces as well as a positive correlation between the enhancement performance of the micro-pillars and increasing inclination angles. This angular dependence arises from surface inclination-induced tail elongation and the corresponding asymmetry of droplets. With definition of the one-dimensional asymmetry factor ( ε ) and volume asymmetry factor ( γ ), it was proven that although the asymmetric thickness of the droplets reduces the nucleation density and bubble stable diameter, the droplet asymmetry significantly increased the heat exchange area, resulting in a 37% improvement in the evaporation rate of micro-pillar surfaces and about a 15% increase in its enhancement performance to smooth surfaces when the inclination angle increased from 0°to 60°. These results indicate that asymmetry causes changes in heat transfer conditions, specifically, a significant increase in the wetted area and deformation of the liquid film, which are the direct enhancement mechanisms of inclined micro-pillar surfaces.
Suggested Citation
Yi-Nan Zhang & Guo-Qing Huang & Lu-Ming Zhao & Hong-Xia Chen, 2025.
"Visualization of Kinetic Parameters of a Droplet Nucleation Boiling on Smooth and Micro-Pillar Surfaces with Inclined Angles,"
Energies, MDPI, vol. 18(15), pages 1-21, August.
Handle:
RePEc:gam:jeners:v:18:y:2025:i:15:p:4152-:d:1717997
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