Leidenfrost drop impact on inclined superheated substrates
Abstract
In real applications, drops always impact on solid walls with various inclinations. For the oblique impact of a Leidenfrost drop, which has a vapor layer under its bottom surface to prevent its direct contact with the superheated substrate, the drop can nearly frictionlessly slide along the substrate accompanied by the spreading and the retracting. To individually study these processes, we experimentally observe ethanol drops impact on superheated inclined substrates using high-speed imaging from two different views synchronously. We first study the dynamic Leidenfrost temperature, which mainly depends on the normal Weber number . Then the substrate temperature is set to be high enough to study the Leidenfrost drop behaviors. During the spreading process, drops always keep uniform. And the maximum spreading factor follows a power-law dependence on the large normal Weber number as for . During the retracting process, drops with low impact velocities become non-uniform due to the gravity effect. For the sliding process, the residence time of all studied drops is nearly a constant, which is not affected by the inclination and number. The frictionless vapor layer results in the dimensionless sliding distance follows a power-law dependence on the parallel Weber number as . Without direct contact with the substrate, the behaviors of drops can be separately determined by and . When the impact velocity is too high, the drop fragments into many tiny droplets, which is called the splashing phenomenon. The critical splashing criterion is found to be 120 or 5300 in the current parameter regime.
Keywords
Cite
@article{arxiv.2008.11593,
title = {Leidenfrost drop impact on inclined superheated substrates},
author = {Yujie Wang and Ayoub El Bouhali and Sijia Lyu and Lu Yu and Yue Hao and Zhigang Zuo and Shuhong Liu and Chao Sun},
journal= {arXiv preprint arXiv:2008.11593},
year = {2021}
}
Comments
8 pages, 9 figures, 31 references