水中脉冲放电诱导放电通道特性及其在太阳能电池板回收中的应用研究

Yue Fan, Ling Jiang, Jun Kang, Shengfu Wang, Chenglei Zhang, Meng-Yao Zhang, Baipeng Song, Guanjun Zhang
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引用次数: 1

摘要

脉冲放电在水中不仅能产生臭氧、过氧化氢等氧化电位高的活性物质,还能产生紫外线和冲击波,近年来在生物医药、环境、矿山等领域得到了广泛应用。水中活性物质的形成与脉冲放电过程中放电通道的形成特性密切相关,因此研究水中放电通道的特性对高压脉冲放电技术的进一步发展具有重要意义。本研究采用马克思脉冲发生器产生的脉冲电压,频率设为1Hz,分析水中脉冲放电诱发的放电通道特性。随着电压幅值的增大,实现了放电方式从流光放电到火花击穿的转变。基于放电通道的基本结果,对其在太阳能电池板回收中的应用进行了初步试验,结果表明高压破碎是一种有效的处理太阳能电池板的方法,本研究引入的最佳参数为193J/g。后板表面形成圆形孔和枝状放电通道,后板表面烧蚀在微观上呈现凹凸不平的孔隙结构。破碎产品中的主要金属被集中在特定粒度的馏分中,便于资源回收。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Study on Characteristics of Discharge Channels Induced by Pulsed Discharge in Water and Its Application in Solar Panel Recycling
Pulse discharge in water can not only produce ozone, hydrogen peroxide and other active substances with high oxidation potential, but also ultraviolet light and shockwaves, which has been widely used in biomedical, environmental, mining and other fields in recent years. The formation of active substances in water is closely related to the formation characteristics of discharge channels in the process of pulse discharge, as a result of which it is of great importance to study the characteristics of discharge channels in water for further development of high voltage pulse discharge technology. In this study, pulsed voltage produced by Marx pulse generator with frequency set to be 1Hz is applied for analyze characteristics of discharge channels induced by pulsed discharge in water. With the increase of voltage amplitude, transition of discharge mode from streamer discharge to spark breakdown is realized. Based on the fundamental results of discharge channels, preliminary experiments of its application in solar panel recycling are performed, which show that high voltage fragmentation is an effective method to deal with solar panels and the optimal parameter is 193J/g imported in this research. Circular holes and dendritic discharge channels are formed on the surface of the back sheets, and the ablation on the surface of the back plates shows a rugged pore structure on the micro level. Main metals in the broken products are concentrated in specific size fractions, which is convenient for resource recovery.
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