交流多模块高压脉冲发生器,输入电流为正弦,用于水下脉冲电弧放电水处理

A. Elserougi, A. Abdel-Khalik, Shehab Ahmed, A. Massoud
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引用次数: 4

摘要

水下脉冲电弧放电是一种有效的水处理方法。在脉冲电弧放电中,通常在水处理室电极之间施加1-10千伏的脉冲输出,电极之间的间隙为几毫米,而脉冲负载电流在1kA以上。所采用的脉冲发生器不仅要能产生高电压电平,还要能承受相应的大电流应力。提出了一种用于脉冲电弧放电水处理系统的多模块高压脉冲发生器。所提出的发电机由n个同步组组成,这些组由隔离的直流电源供电,而它们的输出串联起来形成高压脉冲输出。每组由m个并进并出相同的同步模块组成,以共享电流。每个模块包括一个升压转换器,然后是一个电容二极管电压倍增器(CDVM),然后是斩波绝缘栅双极晶体管(IGBT)。每个模块都经过控制,以确保其两端的直流输出电压、正弦输入电网电流和统一输入功率因数。在提出的方案中,可以使用相对低压的小电流igbt和二极管来产生高压的大电流脉冲输出。最后给出了一个30kW系统的仿真结果,验证了该方法的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AC-powered multi-module high-voltage pusle-generator with sinusoidal input current for water treatment via underwater pulsed arc discharge
The underwater pulsed arc discharge is one of the effective methods in water treatment applications. In pulsed arc discharge, a pulsed output in the range of 1–10 kV is typically applied across the water treatment chamber electrodes with a gap of several millimeters range between these electrodes, while the pulsed load current is above 1kA. The employed pulse generator should not only be capable of generating a high-voltage level, but also withstand the corresponding high-current stresses. In this paper, a multi-module high-voltage pulse generator is proposed for pulsed arc discharge-based water treatment system. The proposed generator consists of n synchronized groups fed from isolated dc sources, while their outputs are connected in series forming a high voltage pulsed output. Each group consists of m parallel-in parallel-out identical synchronized modules to share the current. Each module consists of a boost converter followed by a Capacitor-Diode Voltage Multiplier (CDVM) which is followed by chopping Insulated Gate Bipolar Transistor (IGBT). Each module is controlled to ensure a regulated dc output voltage across its terminals, a sinusoidal input grid current, and unity input power factor. In the proposed scheme, relatively low-voltage low-current IGBTs and diodes can be employed to generate the high-voltage high-current pulsed output. The simulation results for a 30kW system are presented to show the viability of the proposed approach.
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