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首页> 外文期刊>Aerosol Science and Technology: The Journal of the American Association for Aerosol Research >Design and Collection Efficiency of a New Electrostatic Precipitator for Bioaerosol Collection
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Design and Collection Efficiency of a New Electrostatic Precipitator for Bioaerosol Collection

机译:新型用于生物气溶胶收集的静电除尘器的设计和收集效率

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摘要

We have developed and tested a new bioaerosol sampler in which airborne microorganisms are collected by electrostatic means. In this sampler, 2 ionizers charge the incoming particles if they carry insufficient electric charge for efficient collection. The organisms are then subjected to a precipitating electric field and are collected onto 2 square agar plates positioned along the flow axis. Tests with nonbiolgical NaCl particles versus b. subtilis var. niger (BG) spores and vegetative cells have shown that airborne microorganisms are collected more efficiently than nonbiological particles, even when the microorganisms have first passed through an electric charge neutralizer with no additional charging applied. The difference was attributed to the natural charges contained in cell membranes or spore coats of the microorganisms. Charge-neutralized BG spores and vegetative cells were collected at 4 L/min with efficiencies close to 80% depending on the precipitation voltage, versus 50-60% for NaCl test particles. When incoming BG spores were charged with positive ions and then collected by a precipitating voltage of +1,300 v, about 80% of the incoming spores were collected and more than 70% of incoming spores formed colonies. These experiments with BG spores have also indicated that there were no significant particle losses inside the sampler. The collection efficiency of biological and nonbiological particles increased to 90-100% when the particles were externally charged and the precipitating voltage was increased to more than +-4,000 V. It was also been sown that the aerosolized BG spores (used as anthrax simulants for bioaerosol sensors) carry a net negative electric charge. Thus the collection efficiency depends on the polarity of the electric field applied across the agar plates. These findings indicate that the collection of airborne microorganisms is possible by electrostatic precipitation without prior electric charging if the microorganisms already carry electric charges. These are usually high immediately after their release into the air.
机译:我们已经开发并测试了一种新的生物气溶胶采样器,该采样器通过静电方式收集了空气中的微生物。在此采样器中,如果两个离子发生器携带的电荷不足以有效收集,则它们会对传入的颗粒充电。然后,使生物受到沉淀电场的作用,并收集到沿流动轴放置的2个方形琼脂板上。用非生物氯化钠颗粒进行测试与b。枯草变种尼日尔(BG)孢子和营养细胞显示,即使微生物首先通过电荷中和器而没有施加额外的电荷,空气中的微生物也比非生物颗粒更有效地收集。差异归因于微生物细胞膜或孢子被膜中所含的自然电荷。电荷中和的BG孢子和营养细胞以4 L / min的速度收集,取决于沉淀电压,效率接近80%,而氯化钠测试颗粒的效率为50-60%。当传入的BG孢子充满正离子,然后通过+1,300 v的沉淀电压收集时,大约80%的传入孢子被收集,超过70%的传入孢子形成菌落。这些使用BG孢子的实验还表明,采样器内部没有明显的颗粒损失。当外部带电并且沉淀电压增加到+ -4,000 V以上时,生物和非生物颗粒的收集效率提高到90-100%。还有人提出雾化的BG孢子(用作炭疽模拟剂用于生物气溶胶传感器)带有净负电荷。因此,收集效率取决于施加在琼脂板上的电场的极性。这些发现表明,如果微生物已经带有电荷,则可以通过静电沉淀收集空气中的微生物而无需事先充电。这些通常在释放到空气中后立即很高。

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