Droplet Impacts on Cold Cylindrical Copper Surfaces

IF 1.3 4区 工程技术 Q3 ENGINEERING, MECHANICAL Journal of Engineering Thermophysics Pub Date : 2025-01-17 DOI:10.1134/S181023282404012X
J. J. Tian, M. P. Wu, S. Mehendale, Z. Zhang
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Abstract

Currently, we investigate the collision process of water droplets on cold cylindrical copper surfaces by means of a video camera and a cooling testbed. The solidification of water vapor on cold metal surfaces increases the friction of contacting liquids is an unavoidable factor, so we experimented with a uniform atmospheric pressure and relative humidity environment. The paramount purpose of this experiment was to avail oneself of the change in viscosity due to temperature change and the change in radius of copper cylinder to understand its effect on droplet impact conducting heat and freezing. The results show that the substrate viscosity (frost layer) has marginal effect on the time for a droplet to reach maximum diffusion in the two main droplet movement directions. In addition, droplet diffusion on cold cylindrical copper surfaces consists of three processes: spreading stage, transitional stage and steady stage. Among these three phases, power function fitting works best in the spreading stage. Besides, we have used the composite spreading coefficient \(\gamma\) to describe the speed of spreading. For any radius cylinder, the cooler the temperature, the bigger the average value of the composite spreading coefficient \(\gamma\) below 0°C than above 0°C. The larger the composite spreading coefficient \(\gamma\) is, the more slowly the droplet dimensionless spreading arc length changes with dimensionless time. Moreover, droplets between 0°C and −5°C sometimes show post-collision supercooling, which is related to surface viscosity instability and the contribution of surface shape to droplet retraction.

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液滴对冷圆柱形铜表面的冲击
目前,我们利用摄像机和冷却试验台研究了水滴在冷圆柱形铜表面上的碰撞过程。水蒸气在冷金属表面的凝固是增加液体接触摩擦的不可避免的因素,因此我们在均匀的大气压力和相对湿度环境下进行了实验。本实验的主要目的是利用温度变化引起的粘度变化和铜圆柱半径的变化来了解其对液滴冲击导热和冻结的影响。结果表明,在两个主要的液滴运动方向上,基质粘度(霜层)对液滴达到最大扩散时间的影响不大;此外,液滴在冷圆柱铜表面上的扩散过程包括扩散阶段、过渡阶段和稳定阶段。在这三个阶段中,幂函数拟合在扩散阶段效果最好。此外,我们还使用了复合扩散系数\(\gamma\)来描述扩散速度。对于任意半径圆柱体,温度越低,复合扩散系数\(\gamma\)在0℃以下的平均值大于0℃以上的平均值。复合扩散系数\(\gamma\)越大,液滴无因次扩散弧长随无因次时间的变化越慢。此外,在0°C ~ - 5°C之间,液滴有时会出现碰撞后过冷现象,这与表面粘度不稳定性和表面形状对液滴缩回的贡献有关。
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来源期刊
Journal of Engineering Thermophysics
Journal of Engineering Thermophysics THERMODYNAMICS-ENGINEERING, MECHANICAL
CiteScore
2.30
自引率
12.50%
发文量
0
审稿时长
3 months
期刊介绍: Journal of Engineering Thermophysics is an international peer reviewed journal that publishes original articles. The journal welcomes original articles on thermophysics from all countries in the English language. The journal focuses on experimental work, theory, analysis, and computational studies for better understanding of engineering and environmental aspects of thermophysics. The editorial board encourages the authors to submit papers with emphasis on new scientific aspects in experimental and visualization techniques, mathematical models of thermophysical process, energy, and environmental applications. Journal of Engineering Thermophysics covers all subject matter related to thermophysics, including heat and mass transfer, multiphase flow, conduction, radiation, combustion, thermo-gas dynamics, rarefied gas flow, environmental protection in power engineering, and many others.
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