Zhu Zhanglei, Jiang Youhua, Drelich Jaroslaw W
Department of Materials Science and Engineering, Michigan Technological University, Houghton, Michigan 49931, United States.
College of Chemistry and Chemical Engineering, Xi'an University of Science and Technology, Xi'an, Shaanxi 710054, China.
Langmuir. 2022 Jul 12;38(27):8456-8461. doi: 10.1021/acs.langmuir.2c01053. Epub 2022 Jun 29.
Adhesion of a liquid droplet to a solid surface is a result of solid surface interactions with surrounding fluids, affected by its wettability and morphology. Unfortunately, the direct measurements of adhesion forces are rarely reported in the scientific literature, especially for solids with curvatures. In this study, by using a high-sensitivity microelectronic mechanical balance which vertically deposits and then pulls liquid droplets, the spreading and adhesion forces for water and ethylene glycol droplets on spherical surfaces of polyethylene terephthalate (PET) with radii of curvature from 2 to 8 mm were recorded. Results show that the surface curvature does not affect the advancing and most-stable contact angles but affects the extent of spreading and maximum adhesion forces. The solid surface curvature affects both surface tension and Laplace pressure forces at the spreading point, whereas it mainly affects the Laplace pressure force at the maximum adhesion point.
液滴与固体表面的粘附是固体表面与周围流体相互作用的结果,受其润湿性和形态的影响。遗憾的是,科学文献中很少报道粘附力的直接测量,特别是对于具有曲率的固体。在本研究中,通过使用高灵敏度微电子机械天平垂直沉积然后拉动液滴,记录了曲率半径为2至8mm的聚对苯二甲酸乙二酯(PET)球形表面上水滴和乙二醇液滴的铺展力和粘附力。结果表明,表面曲率不影响前进和最稳定接触角,但影响铺展程度和最大粘附力。固体表面曲率在铺展点影响表面张力和拉普拉斯压力,而在最大粘附点主要影响拉普拉斯压力。