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Experimental study of a string-based counterflow wet electrostatic precipitator for collection of fine and ultrafine particles

机译:基于串的逆流静电除尘器,用于收集精细和超细颗粒的实验研究

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摘要

Wet electrostatic precipitators (WESP) have been widely studied for collecting fine and ultrafine particles, such as diesel paniculate matter (DPM), which have deleterious effects on human health. Here, we report an experimental and numerical simulation study on a novel string-based two-stage WESP. Our new design incorporates grounded vertically aligned polymer strings, along which thin films of water flow down. The water beads, generated by intrinsic flow instability, travel down the strings and collect charged particles in the counterflowing gas stream. We performed experiments using two different geometric configurations of WESP: rectangular and cylindrical. We examined the effects of the WESP electrode bias voltage, air stream velocity, and water flow rate on the number-based fractional collection efficiency for particles of diameters ranging from 10 nm to 2.5 μm. The collection efficiency improves with increasing bias voltages or decreasing airflow rates. At liquid-to-gas (L/G) as low as approximately 0.0066, our design delivers a collection efficiency over 70% even for fine and ultrafine particles. The rectangular and cylindrical configurations exhibit similar collection efficiencies under nominally identical experimental conditions. We also compare the water-to-air mass flow rate ratio, air flow rate per unit collector volume, and collection efficiency of our string-based design with those of previously reported WESPs. The present work demonstrates a promising design for a highly efficient, compact, and scalable two-stage WESPs with minimal water consumption.Implications: Wet Electrostatic Precipitators (WESPs) are highly effective for collecting fine particles in exhaust air streams from various sources such as diesel engines, power plants, and oil refineries. However, their large-scale adoption has been limited by high water usage and reduced collection efficiencies for ultrafine particles. We perform experimental and numerical investigation to characterize the collection efficiency and water flow rate-dependence of a new design of WESP. The string-based counterflow WESP reported in this study offers number-based collection efficiencies >70% at air flow rates per collector volume as high as 4.36 (m~3/s)/m~3 for particles of diameters ranging from 10 nm - 2.5 urn, while significantly reducing water usage. Our work provides a basis for the design of more compact and water-efficient WESPs.
机译:湿式静电除尘器(WESP)已被广泛研究用于收集细和超细颗粒,如柴油圆锥状物质(DPM),其对人体健康有害的影响。在这里,我们报告了一种新的基于字符串的两级WESP的实验和数值模拟研究。我们的新的设计结合接地后垂直对准聚合物串,沿其中水薄膜流下来。水珠,由本征流动不稳定,旅行向下逆流气体流中的字符串和收集带电粒子产生的。我们使用WESP的两个不同的几何构型的实验:矩形和圆柱形的。我们检查了WESP电极偏置电压,气流速度,和对直径为10纳米至2.5μm的颗粒的基于数量分取效率水流量的影响。收集效率随偏置电压或降低气流速率提高。在液体 - 气体(L / G)低至约0.0066,我们的设计提供即使对于细和超细颗粒的70%以上的捕集效率。矩形和圆筒状的构型呈现名义上相同的实验条件下,类似的收集效率。我们也比较了水 - 空气质量流量比,每单位体积的收集空气流速,并与先前报道WESPs我们基于字符串的设计的收集效率。本工作表明有希望的设计,高效,紧凑的,可伸缩的两阶段WESPs以最小的水consumption.Implications:湿式静电除尘器(WESPs)是用于从各种来源如柴油在排气气流收集微粒高效发动机,发电厂和炼油厂。然而,他们的大规模采用已被高水的使用和对超细颗粒减少收集效率的限制。我们进行实验和数值调查表征收集效率和世界电子统计平台全新设计的水流量依赖性。的基于字符串的逆流WESP报道在本研究中提供基于数量的收集效率>以每收集器体积空气流率高达4.36 70%(〜3 / S)/ M为从10纳米直径的颗粒〜3 - 2.5瓮,而显著减少用水量。我们的工作提供了更紧凑,更高效保水WESPs的设计提供了依据。

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    Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles USA;

    Department of Environmental Health Sciences University of California Los Angeles Los Angeles USA;

    Department of Environmental Health Sciences University of California Los Angeles Los Angeles USA;

    Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles USA;

    Department of Mathematics University of California Los Angeles Los Angeles USA;

    Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles USA Department of Mathematics University of California Los Angeles Los Angeles USA;

    Department of Mechanical and Aerospace Engineering University of California Los Angeles Los Angeles USA;

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