环境空气相对湿度和表面温度对水滴扩散动力学的影响

M. Jadidi, M. Farzad, J. Trépanier, A. Dolatabadi
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引用次数: 3

摘要

水滴对水平玻璃、铝和超疏水表面的影响采用高速成像进行了实验研究。实验在三种不同的相对湿度(即10、20和30%)和三种表面温度(即20、2和- 2°C)下进行,以确定它们对液滴扩散和反冲行为的影响。在本研究中,液滴韦伯数、雷诺数和周围空气温度分别固定为16.2、1687和23℃。制备了液滴撞击、扩散和后坐力的高速图像以及液滴扩散的时间变化。结果表明,表面温度与露点温度之比(取决于空气温度和相对湿度)对液滴的扩散、反冲和接触角有显著影响。当这个比值小于1时,凝结和结霜就变得重要了。降低上述比例(可以通过降低表面温度或增加相对湿度来实现)会使亲水表面的液滴扩散因子显著增加。对于超疏水表面,降低该比率(在上述范围内)不影响最大扩散。然而,反冲相减慢,液滴脱离超疏水表面的时间明显增加。此外,平衡接触角随比例的减小而减小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Ambient Air Relative Humidity and Surface Temperature on Water Droplet Spreading Dynamics
Water droplet impact on horizontal glass, aluminum, and superhydrophobic surfaces is experimentally investigated using high speed imaging. Experiments are performed at three different relative humidities (i.e. 10, 20 and 30%) and three surface temperatures (i.e. 20, 2 and −2°C) to ascertain their effects on droplet spreading and recoil behaviors. In this study, the droplet Weber number, Reynolds number, and the ambient air temperature are fixed at 16.2, 1687, and 23°C, respectively. The high-speed images of impact, spreading and recoil of the droplets as well as the temporal variations of droplet spreads are prepared. Results show that the ratio of surface temperature to dew point temperature (which depends on the air temperature and relative humidity) has a significant influence on droplet spreading, recoil, and contact angle. When this ratio is less than one, condensation and frost formation become important. Decreasing the mentioned ratio (it can be done by decreasing the surface temperature or increasing the relative humidity) causes the droplet spreading factor for hydrophilic surfaces to increase significantly. For superhydrophobic surface, decreasing this ratio (within the mentioned range) does not influence the maximum spreading. However, the recoiling phase is slowed down and the droplet detachment time form the superhydrophobic surface is increased noticeably. In addition, the equilibrium contact angle decreases as the mentioned ratio decreases.
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