热传递到湿性和非湿性液滴沉积在加热的微槽表面

Tailian Chen
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引用次数: 0

摘要

在许多工程应用中,液滴在加热基底上的蒸发是一个重要的过程,在此过程中,能量传输取决于液体/基底的润湿特性等。本文通过微槽下的分布温度测量,实验研究了沉积在具有多个平行微槽的加热金属表面上的液滴的瞬态传热。液滴沉积后的初始热传导导致衬底温度急剧下降,在此期间,酒精和水滴都有一个短暂但显著的温度平台,这可能是由于液滴和衬底之间形成了一层薄薄的蒸汽。根据不同的润湿特性,酒精和水的瞬态传热过程有很大的不同。酒精液滴沉积后,液滴在微沟槽鳍上瞬间扩散,液体渗透到微沟槽中,由于液体薄膜的形成和蒸发,导致衬底温度持续下降。沉积的酒精只需要将近半秒的时间就可以完全蒸发,在这个时候,基底达到了整个过程中最低的温度。水滴在沉积过程中,其完全蒸发大约需要7分钟,在此期间,基底温度经历了四个不同的阶段,与基底上水滴的演化相对应。这项工作的结果提供了对具有不同液体/衬底润湿特性的液滴蒸发过程中传热的基本物理的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat transfer to wetting and non-wetting liquid droplets deposited onto a heated microgroove surface
Evaporation of liquid droplets on a heated substrate is an important process in numerous engineering applications, during which the energy transport is dependent upon, among many others, the liquid/substrate wetting characteristics. In this work, transient heat transfer to a liquid droplet deposited on a heated metallic surface with multiple parallel microgrooves were experimentally investigated from distributed temperature measurements underneath the microgrooves. The initial heat conduction following deposition of a liquid droplet causes a sharp decease in the substrate temperature, during which a fleeting but notable temperature plateau for both cases of alcohol and water droplets is likely attributed to a thin layer of vapor formed in between the droplet and the substrate. Depending on the wetting characteristics, the transient heat transfer process is drastically different for the cases of alcohol and water. Deposition of an alcohol droplet is followed by the droplet instantaneous spreading on the microgroove fins and liquid penetration into the microgrooves, leading to continued temperature decrease in the substrate as a result of formation and evaporation of liquid thin films. It takes only nearly half a second for complete evaporation of the deposited alcohol, at which the substrate reaches its lowest temperature in the process. As a water droplet is deposited, it takes about 7 minutes for its complete evaporation, during which the substrate temperature experiences four distinct stages corresponding to evolution of the water droplet on the substrate. The results in this work provide insights into the fundamental physics of heat transfer during evaporation of liquid droplets with different liquid/substrate wetting characteristics.
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