解构等离子体雾收集技术:影响收集效率因素的实验研究

Dingchen Li, Chuan Li, Menghan Xiao, Li Jiawei, Zhiwen Yang, Qixiong Fu, Ming Zhang, Kexun Yu, Yuan Pan
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引用次数: 0

摘要

水资源短缺是阻碍人类发展的全球性挑战。近年来,静电集雾技术已成为缓解这一问题的一种很有前途的技术。虽然之前已经开发出基于多种电极结构的静电集雾器,但对影响静电集雾效率的其他因素(如电因素、环境因素等)的研究较少,这就推迟了该技术的商业应用。本文以典型的金属丝网电极集雾器为例,实验研究了电源极性、电压、气流方向、气流速度、雾浓度和温度对集雾效率的影响。结果表明,电和环境因素通过改变液滴的电荷和电场力来影响收集效率。负极性电晕和高压更有利于雾的收集。由于能够将更多的水滴带入电场,高速气流和高雾浓度增加了收集的水量。但电晕放电的减弱会降低收集效率。高温加速了雾滴的蒸发,不利于雾的收集。总之,这项工作不仅有助于揭示静电雾收集的潜在机制,而且对高效雾收集器的开发具有指导意义。
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Deconstructing Plasma Fog Collection Technology: An Experimental Study on Factors Impacting Collection Efficiency
Abstract Water scarcity is a global challenge that hinders human development. In recent years, electrostatic fog collection technology has emerged as a promising technology to alleviate this issue. Although electrostatic fog collectors based on a variety of electrode structures have been developed previously, there has been less research into other factors affecting the efficiency of electrostatic fog collection (e.g. electrical factors, environmental factors, etc.), which has delayed the commercial application of the technology. In this paper, we experimentally investigate the effects of power supply polarity, voltage, airflow direction, airflow velocity, fog concentration and temperature on collection efficiency using a typical wire-mesh electrode fog collector as an example. The results show that both electrical and environmental factors influence the collection efficiency by changing the charge and the electric field force of the droplets. Negative polarity corona and high voltage are more favorable for fog collection. High velocity airflow and high fog concentration increase the amount of water collected due to the ability to bring more droplets into the electric field. However, the collection efficiency is reduced by the weakening of the corona discharge. High temperature accelerates the evaporation of fog droplets, which is not favorable for fog collection. In conclusion, this work will not only contribute to revealing the underlying mechanisms of the electrostatic fog collection but also will guide the development of highly efficient fog collectors.
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