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Assessment of NIOSH-approved N95 filter performance against varying conditions

机译:根据不同条件评估NIOsH批准的N95过滤器性能

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摘要

The emergence of nanotechnology has increased the concern of exposure to nanoparticles through inhalation. Studies have examined the performance of filtering facepiece respirators against engineered nanoparticles. This has been done by the generation and dispersal of certain particles in a given size distribution, which have then been run through experimental set-ups involving Condensation Particle Counters, Scanning Mobility Particle Sizers, and high efficiency performance filters for a set flow. Published studies have shown that the respirators used do provide expected levels of filtration protection against nanometer-sized particles. However, studies have not examined or applied different types of nanoparticle samples - different particle types have differing morphologies and physical characteristics that could affect filter performance. This study has exposed NIOSH-approved N95 facepiece respirators to six different types of engineered nanoparticles: aluminum oxide, iron oxide, single-walled carbon nanotubes, synthesized diamond, silicon dioxide, and titanium dioxide. In addition, N95 respirators have not been commonly exposed to differing concentrations of an aerosol in order to observe a shift in the primary penetrating particle size and a shift in the overall size distribution. This study challenged N95 respirators to four different concentrations of sodium chloride: 0.1, 1, 10, and 50 mg/ml. Another concern is whether or not a prolonged exposure of a single respirator affects the overall performance and protection from an aerosol, especially engineered nanoparticles, since very few studies have been done regarding this matter. N95 respirators were exposed to several types of engineered nanoparticles in a respirator testing apparatus at a set flow rate, examined for penetration with an SMPS, CPC, and DMA given these conditions: differing concentrations of sodium chloride, different engineered particles, and an extended duration of exposure to both sodium chloride and 15-nm titanium dioxide. This study showed that the primary penetrating particle size through an N95 facepiece respirator does increase and shift with increasing concentrations of an aerosol; however, the overall size distribution did not seem to shift much. Penetration decreased as sodium chloride concentration increased. Different nanoparticles had differing primary penetrating particle sizes through the respirator; however, penetration of these particles was similar to one another with the exception of iron oxide which had quite a high penetration percentage. A decrease in N95 respirator performance was observed when exposed to a 1 mg/ml solution of sodium chloride, as penetration increased with prolonged exposure. However, this did not seem to be the case when the respirator was exposed to a 6.67 mg/ml suspension of 15-nm titanium dioxide, as the penetration over the extended period of time was similar to one another.
机译:纳米技术的出现增加了通过吸入暴露于纳米颗粒的关注。研究研究了过滤面板呼吸器对工程纳米颗粒的性能。这已经通过给定尺寸分布中的某些颗粒的产生和分散,然后通过涉及缩合粒子计数器,扫描迁移率粒子大计的实验组,以及用于设定流程的高效率性能过滤器来进行。已发表的研究表明,使用的呼吸器确实为纳米尺寸的颗粒提供了预期的过滤保护水平。然而,没有检查或施加不同类型的纳米粒子样品 - 不同的颗粒类型具有不同的形态和物理特性,可能影响过滤性能。本研究暴露NIOSH认证N95面罩呼吸器,六种不同类型的工程纳米颗粒:氧化铝,氧化铁,单壁碳纳米管,合成金刚石,二氧化硅,和二氧化钛。此外,N95呼吸器尚未通常暴露于不同浓度的气溶胶浓度,以观察主要穿透粒度的变化和整体尺寸分布的换档。该研究挑战N95呼吸器至四种不同浓度的氯化钠:0.1,1,10和50mg / ml。另一个问题是单一呼吸器的长期暴露是否会影响气溶胶,特别是工程纳米颗粒的整体性能和保护,因为很少有关于这一问题的研究。 N95呼吸器在呼吸器检测装置中暴露于几种类型的工程纳米粒子,以设定的流速检查,以便通过SMPS,CPC和DMA进行穿透,因为这些条件:不同浓度的氯化钠,不同的工程颗粒和延长的持续时间暴露于氯化钠和15nm二氧化钛。本研究表明,通过N95面部呼吸器的主要穿透粒度会增加并随着气溶胶浓度的增加而转变;然而,整体规模分布似乎没有太大转移。随着氯化钠浓度增加,渗透率降低。不同的纳米颗粒通过呼吸器具有不同的初级穿透粒度;然而,除了具有相当高的渗透百分比的氧化物外,这些颗粒的渗透与彼此相似。当暴露于1mg / ml氯化钠溶液时,观察到N95呼吸器性能的降低,随着延长的暴露而增加,渗透率增加。然而,当呼吸器暴露于6.67mg / ml的二氧化钛的悬浮液中时,这并不是如此,因为在延长的时间内渗透相似。

著录项

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    Mitchell Kang;

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  • 年度 -1
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  • 原文格式 PDF
  • 正文语种 eng
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