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利用仿生超疏水纱线作为水下气体虹吸管实现高效气体传输。

Efficient Gas Transportation Using Bioinspired Superhydrophobic Yarn as the Gas-Siphon Underwater.

作者信息

Zhang Xiaolong, Dong Yang, He Zhao, Gong Hanyuan, Xu Xiang, Zhao Meiyun, Qin Hongling

机构信息

Hubei Key Laboratory of Hydroelectric Machinery Design & Maintenance, China Three Gorges University, Yichang 443002, China.

State Key Laboratory of Solid Lubrication, Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, Lanzhou 730000, China.

出版信息

ACS Appl Mater Interfaces. 2020 Apr 15;12(15):18174-18181. doi: 10.1021/acsami.0c03366. Epub 2020 Apr 2.

Abstract

Inspired by the gas-trapped mechanism underwater of , we prepared a superhydrophobic yarn with a fiber network structure via a facile and environmentally friendly method. Attributed to the low surface energy, the superhydrophobic fiber network structure on the yarn is able to trap and transport bubbles directionally underwater. The functional yarn has good superhydrophobic and superaerophilic properties underwater to realize the directional transport of bubbles underwater without being pumped. We designed demonstration experiments on the antibuoyancy directional bubble transportation, which indicated the feasibility in the applications of gas-related fields. Significantly, on further testing, where the superhydrophobic yarn is put into a U-shaped pipe, we obtain a gas-siphon underwater with a high flux. The superhydrophobic fiber structure yarn can trap the gas underwater to enable the self-starting behavior while no manual intervention is used. The gas-siphon can convey gas over the edge of a vessel and deliver it at a higher level without energy input, which is driven by the differential pressure. The relationship between the differential pressure and the volume flux of transport bubbles is investigated. The experimental results show that the prepared superhydrophobic yarn has the advantages of good stability, easy preparation, and low cost in bubble continuous transportation underwater, which provides a novel strategy for the development and application of new technologies such as directional transportation, separation, exhaustion, and collection of gases in water.

摘要

受[具体对象]水下气体捕获机制的启发,我们通过一种简便且环保的方法制备了具有纤维网络结构的超疏水纱线。由于表面能低,纱线上的超疏水纤维网络结构能够在水下定向捕获和运输气泡。该功能纱线在水下具有良好的超疏水和超亲气性能,无需泵送即可实现气泡在水下的定向运输。我们设计了反浮力定向气泡运输的演示实验,这表明了其在气体相关领域应用的可行性。值得注意的是,在进一步测试中,将超疏水纱线放入U形管中,我们获得了高通量的水下气体虹吸现象。超疏水纤维结构纱线在水下能够捕获气体,实现自启动行为,无需人工干预。该气体虹吸现象可以在无能量输入的情况下,将气体输送过容器边缘并在更高位置输送,这是由压差驱动的。研究了压差与运输气泡体积通量之间的关系。实验结果表明,所制备的超疏水纱线在水下气泡连续运输方面具有稳定性好、制备简便、成本低等优点,为水中气体的定向运输、分离、排空和收集等新技术的开发与应用提供了一种新策略。

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