首页> 外文会议>Industry Applications Conference, 1997. Thirty-Second IAS Annual Meeting, IAS '97., Conference Record of the 1997 IEEE >Collection efficiency of ultrafine particles by an electrostatic precipitator under DC and pulse operating modes
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Collection efficiency of ultrafine particles by an electrostatic precipitator under DC and pulse operating modes

机译:静电除尘器在直流和脉冲操作模式下对超细颗粒的收集效率

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High particle collection efficiency in terms of particle weight volume mg/m/sup 3/ is well achieved by a conventional electrostatic precipitator (ESP). However, the collection efficiencies in terms of number density for the ultrafine (particle size between 0.01 to 0.1 /spl mu/m) or submicron particles by a conventional ESP are still relatively low. Therefore, it is necessary to improve the collection efficiency for ultrafine particles. In this work, attempts have been made to improve the ultrafine particle collection efficiency using the short pulse energizations. The present version of ESP consists of three sets of wire plate type electrodes. For ESP under DC operation modes, experimental results show that the collection efficiency for DC applied voltage decreases with increasing dust loading when particle density is larger than 2.5/spl times/10/sup 10/ part/m/sup 3/. For ESP under pulse operating modes, the particle collection efficiency increases with increasing pulse peak voltage until 25 kV then decreases with increasing pulse peak voltage. The ultrafine particle collection efficiency based on particle density by DC energizations is much higher compared with pulse energizations without DC bias may be due to the reentrainments of ultrafine particles.
机译:通过常规的静电除尘器(ESP)很好地实现了以颗粒体积mg / m / sup 3 /计的高颗粒收集效率。然而,就常规ESP而言,就超细颗粒(粒度在0.01至0.1μl/splμm/ m之间)或亚微米颗粒的数密度而言,收集效率仍然相对较低。因此,有必要提高超细颗粒的收集效率。在这项工作中,已经尝试使用短脉冲激励来提高超细颗粒的收集效率。当前版本的ESP由三组线板式电极组成。对于在直流工作模式下的电除尘器,实验结果表明,当颗粒密度大于2.5 / spl乘以10 / sup 10 /份/ m / sup 3 /时,直流施加电压的收集效率随着粉尘负荷的增加而降低。对于在脉冲操作模式下的ESP,颗粒收集效率随着脉冲峰值电压的增加而增加,直到25 kV,然后随着脉冲峰值电压的增加而降低。与没有直流偏压的脉冲激励相比,基于通过直流激励的粒子密度的超微粒子收集效率要高得多,这可能是由于超微粒子的重新夹带所致。

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