Liu Xuanchen, Liu Liansheng, Zhang Wenrui, Xie Jun, Duan Runze
School of Energy and Environmental Engineering, Hebei University of Technology, Tianjin 300401, China.
Hebei Key Laboratory of Thermal Science and Energy Clean Utilization, Tianjin 300401, China.
Langmuir. 2023 Nov 7;39(44):15597-15609. doi: 10.1021/acs.langmuir.3c01904. Epub 2023 Oct 25.
It is a common phenomenon that droplets collide with wires in industrial production, and their flow and heat-transfer behavior significantly impact the production efficiency. This article presents an experimental and numerical study on the impact of pure water droplets on hydrophilic stainless-steel wires. The dynamic behavior and solid-liquid heat-transfer law of droplet impacting the wire are emphatically analyzed. The impact position of the droplets has a significant effect on their morphology. Under the condition of low Weber number (), eccentric impacts tend to cause droplets to separate from the wire. Additionally, both and wire/droplet size ratio have noticeable effects on the droplet morphology. The smaller the , the larger the wire/droplet size ratio, and the easier it is for droplets to be captured by wires. Conversely, as increases and the wire-to-droplet size ratio decreases, some droplets become detached from the wire, primarily exhibiting a single-film falling mode. Furthermore, the impact morphology of droplets is influenced by the Ohnesorge number (). The higher the , the more inclined the droplet to develop a double-film falling mode. There is obvious field synergy in the process of droplet impacting on wire. The maximum heat flux is located at the three-phase contact line, while the minimum heat flux is observed at the bubble interface. The impact position of droplets influences the temperature distribution, although its impact on the magnitude of temperature variation is minimal.
在工业生产中,液滴与金属丝碰撞是一种常见现象,其流动和传热行为对生产效率有显著影响。本文针对纯水液滴对亲水性不锈钢丝的影响开展了实验和数值研究。着重分析了液滴撞击金属丝的动态行为及固液传热规律。液滴的撞击位置对其形态有显著影响。在低韦伯数()条件下,偏心撞击往往会导致液滴从金属丝上分离。此外,和金属丝/液滴尺寸比均对液滴形态有显著影响。越小,金属丝/液滴尺寸比越大,液滴越容易被金属丝捕获。相反,随着增大且金属丝与液滴尺寸比减小,一些液滴会从金属丝上脱离,主要呈现单膜下落模式。此外,液滴的撞击形态受奥内佐格数()影响。越高,液滴越倾向于发展成双膜下落模式。液滴撞击金属丝的过程中存在明显的场协同作用。最大热流位于三相接触线处,而在气泡界面处观察到最小热流。液滴的撞击位置会影响温度分布,尽管其对温度变化幅度的影响极小。