脉冲静电除尘器的功率调节

W. Hartmann, M. Romheld, N. Grass
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引用次数: 3

摘要

在许多工业应用中,如燃煤电厂、水泥窑和烧结厂,静电除尘器(ESP)是减少废气流中颗粒物排放到环境中的最佳选择。虽然众所周知,在许多情况下,ESP效率的优化可以通过短脉冲(/spl ap/10 /spl mu/s)高压脉冲(/spl ap/50 kV)增强静电场(用于粒子充电和沉淀)来实现,但实现适用于工业用途的脉冲发电机的技术挑战是巨大的。本文报道了一种新型脉冲发生器的实验室和现场实验,该脉冲发生器采用快速恢复假火花开关和大功率半导体二极管。原型脉冲发生器能够驱动超过150nf的容性负载,峰值电压高达40kv,脉冲持续时间为6至10 /spl mu/s FWHM(全宽度为最大的一半),重复率超过40pps。脉冲形成电容器和负载电容之间的故意失配减少了开关元件的电压约束,减少了/spl ap/0.65,同时不牺牲整体能量效率。高效的能量回收方案可使效率达到90%以上。脉冲发生器能够承受ESP中频繁的闪络事件,其寿命的主要限制是闪络期间半导体二极管中的峰值电流负载,在某些情况下可达到8 kA。在烧结厂的现场实验表明,该脉冲成形方案适用于驱动全尺寸的工业电火花发生器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Power conditioning for pulsed electrostatic precipitators
In many industrial applications like coal-fired power plants, cement kilns and sintering plants, electrostatic precipitators (ESP) are the best choice to reduce particulate emissions from the off-gas stream into the environment. Although it is well known that optimization of ESP efficiency in many cases can be achieved by enhancing the static electric field (which is used for both particle charging and precipitation) with short (/spl ap/10 /spl mu/s) high voltage (/spl ap/50 kV) pulses, the technical challenges for the realization of a pulsed power generator suitable for industrial use are enormous. We report on laboratory and field experiments of a novel pulse generator using a fast recovery pseudospark switch and high-power semiconductor diodes. The prototype pulse generator is able to drive capacitive loads of over 150 nF, at peak voltages of up to 40 kV, pulse duration of 6 to 10 /spl mu/s FWHM (full width at half maximum), and repetition rates of over 40 pps. The intentional mismatch between the pulse forming capacitor and the load capacitance reduces the voltage constraints on the switching element by a factor of /spl ap/0.65 while not sacrificing the overall energy efficiency. An efficient energy recovery scheme leads to efficiencies of the order of 90% and above. The pulse generator is able to withstand frequent flashover events in the ESP, with the main limitation in lifetime caused by the high peak current load in the semiconductor diodes during flashover, which can reach up to 8 kA in some cases. Field experiments on sintering plants have shown the suitability of this pulse forming scheme to drive full-scale industrial ESPs.
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