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一种基于通用交流电动学的水下光学器件表面防污策略。

A universal AC electrokinetics-based strategy toward surface antifouling of underwater optics.

作者信息

Jiang Hao, Wang Yan, Du Fei, Stolte Stefan, Specht Uwe, Pesch Georg R, Baune Michael

机构信息

College of Chemistry and Chemical Engineering, Qingdao University, Qingdao, 266071, People's Republic of China.

Institute of Water Chemistry, Dresden University of Technology, 01069, Dresden, Germany.

出版信息

Sci Rep. 2024 Jul 12;14(1):16125. doi: 10.1038/s41598-024-66251-2.

Abstract

The practical applications of underwater optical devices, such as cameras or sensors, often suffer from widespread surface biofouling. Current antifouling techniques are primarily hindered by low efficiency, poor compatibility, as well as environmental pollution issues. This paper presents a transparent electrode coating as antifouling system of underwater optics as potential substitute for alternating current electrokinetic (ACEK)-based systems. A strong-coupling model is established to predict the Joule heating induced fluid flows and the negative dielectrophoretic (nDEP) effect for mobilizing organisms or deposited sediments on optic surfaces. The performance of the proposed antifouling system is numerically evaluated through simulations of electrostatic, fluid and temperature fields as well as trajectories of submicron particles, which is then experimentally verified and found to be in good agreement. A parametric study revealed that the degree of electrodes asymmetry is the key factor affecting the flow pattern and therefore the overall performance of the system. This ACEK-based universal strategy is expected to shed light on designing high performance and non-toxic platforms toward energy-efficient surface antifouling applications of underwater optics.

摘要

水下光学设备,如相机或传感器,其实际应用常常受到广泛的表面生物污垢的影响。当前的防污技术主要受到效率低、兼容性差以及环境污染问题的阻碍。本文提出了一种透明电极涂层,作为水下光学防污系统,有望替代基于交流电动(ACEK)的系统。建立了一个强耦合模型,以预测焦耳热引起的流体流动以及用于移动光学表面上的生物或沉积沉积物的负介电泳(nDEP)效应。通过对静电、流体和温度场以及亚微米颗粒轨迹的模拟,对所提出的防污系统的性能进行了数值评估,随后进行了实验验证,发现两者吻合良好。参数研究表明,电极不对称程度是影响流动模式进而影响系统整体性能的关键因素。这种基于ACEK的通用策略有望为设计用于水下光学节能表面防污应用的高性能无毒平台提供思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5f1/11245552/9da4872c7ea8/41598_2024_66251_Fig1_HTML.jpg

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