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仿生超疏水表面上水滴的附着行为。

Adhesion behaviors of water droplets on bioinspired superhydrophobic surfaces.

机构信息

School of Power and Mechanical Engineering, The Institute of Technological Science, Wuhan University, South Donghu Road 8, 430072, Wuhan, Hubei Province, People's Republic of China.

Urology Department, Renmin Hospital of Wuhan University, Zhangzhidong Road 99, 430060, Wuhan, Hubei Province, People's Republic of China.

出版信息

Bioinspir Biomim. 2022 Jun 23;17(4). doi: 10.1088/1748-3190/ac6fa5.

Abstract

The adhesion behaviors of droplets on surfaces are attracting increasing attention due to their various applications. Many bioinspired superhydrophobic surfaces with different adhesion states have been constructed in order to mimic the functions of natural surfaces such as a lotus leaf, a rose petal, butterfly wings, etc. In this review, we first present a brief introduction to the fundamental theories of the adhesion behaviors of droplets on various surfaces, including low adhesion, high adhesion and anisotropic adhesion states. Then, different techniques to characterize droplet adhesion on these surfaces, including the rotating disk technique, the atomic force microscope cantilever technique, and capillary sensor-based techniques, are described. Wetting behaviors, and the switching between different adhesion states on bioinspired surfaces, are also summarized and discussed. Subsequently, the diverse applications of bioinspired surfaces, including water collection, liquid transport, drag reduction, and oil/water separation, are discussed. Finally, the challenges of using liquid adhesion behaviors on various surfaces, and future applications of these surfaces, are discussed.

摘要

由于其各种应用,液滴在表面上的粘附行为引起了越来越多的关注。为了模拟荷叶、玫瑰花瓣、蝴蝶翅膀等天然表面的功能,已经构建了许多具有不同粘附状态的仿生超疏水表面。在这篇综述中,我们首先简要介绍了液滴在各种表面上的粘附行为的基本理论,包括低粘附、高粘附和各向异性粘附状态。然后,描述了用于表征这些表面上液滴粘附的不同技术,包括旋转圆盘技术、原子力显微镜悬臂技术和基于毛细管传感器的技术。还总结和讨论了仿生表面上的润湿行为以及不同粘附状态之间的切换。随后,讨论了仿生表面的各种应用,包括水收集、液体输送、减阻和油水分离。最后,讨论了在各种表面上使用液体粘附行为的挑战以及这些表面的未来应用。

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