水中脉冲电晕:脉冲的产生和应用

W. Hartmann, M. Roemheld, K. Rohde, F. Spieß
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摘要

只提供摘要形式。消除水中的有机污染是饮用水和许多工业过程日益关注的问题。应用脉冲电晕放电是一种已知的可能性,可以通过在原位产生高活性自由基来解决这个问题,而无需使用额外的化学物质。为了研究淹没脉冲电晕放电在水中的效率,我们建立了一个实验室规模的平行板流型反应器,该反应器是闭环水循环系统的一部分。在电极上施加脉冲电压。其中一个电极涂有多孔陶瓷层,以便产生局部场增强以启动电晕放电。为了使等离子体反应器通电,已经开发了一种脉冲发生器,它基于由半导体开关启动的电容器放电。脉冲变压器,接着是两个磁脉冲压缩级,在脉冲宽度为0.3 μ s时产生幅度高达37 kV的电压脉冲。电路性能的仿真结果与电压和电流测量结果吻合良好。介绍了脉冲发生器的详细情况和有关自由基产生效率的初步实验结果。根据待处理水的导电性,在37 kV电压下获得> 600 A的脉冲电流,电极尺寸约为50 cm2。自由基产生的效率是根据过氧化氢(H2O2)浓度来测量的,过氧化氢是由等离子体反应器下游足够高浓度的羟基自由基(OH)重组形成的。在20至100赫兹的脉冲重复率下,可产生高达几毫克/升的H2O2浓度。生产效率已被测量在ap1 g/kWh的范围内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pulsed Corona in Water: Pulse Generation and Applications
Summary form only given. Removal of organic pollution from water is of increasing concern for drinking water as well as for many industrial processes. Application of pulsed corona discharges is a known possibility to attack that problem by producing highly active radicals in-situ, without using additional chemistry. To investigate the efficiency of submerged pulsed corona discharges in water we have built a laboratory scale, parallel-plate, flow-type reactor that is part of a closed loop water circulation system. A pulsed voltage is applied across the electrodes. One of the electrodes is coated with a porous ceramic layer in order to create local field enhancements to initiate corona discharges. For energisation of the plasma reactor a pulse generator has been developed which is based on a capacitor discharge initiated by a semiconductor switch. A pulse transformer, followed by two magnetic pulse compression stages, produces voltage pulses with amplitudes of up to 37 kV at a pulse width of 0.3 mus. Simulation of the circuit behavior leads to good agreement with voltage and current measurements. Details of the pulse generator and first experimental results concerning the efficiency of radicals production are presented. Depending on the conductivity of the water to be treated, pulse currents of > 600 A at a voltage of 37 kV are obtained for electrode sizes of around 50 cm2. The efficiency of the radical production is measured in terms of the hydrogen peroxide (H2O2) concentration, which is formed by recombination of hydroxyl radicals (OH) at sufficiently high concentrations downstream of the plasma reactor. At pulse repetition rates of 20 to 100 Hz, H2O2 concentrations of up to several mg/l are produced. Production efficiencies have been measured to be in the range of up to ap1 g/kWh.
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