首页> 美国卫生研究院文献>International Journal of Environmental Research and Public Health >Evaluation of a Filtering Facepiece Respirator and a Pleated Particulate Respirator in Filtering Ultrafine Particles and Submicron Particles in Welding and Asphalt Plant Work Environments
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Evaluation of a Filtering Facepiece Respirator and a Pleated Particulate Respirator in Filtering Ultrafine Particles and Submicron Particles in Welding and Asphalt Plant Work Environments

机译:在焊接和沥青厂工作环境中过滤超细颗粒和亚微米粒子的过滤面孔呼吸器和褶皱颗粒呼吸器的评估

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摘要

Manufacturing sites, such as welding, casting, and asphalt production (fumes), generate vast numbers of ultrafine particles of <0.1 µm in size and submicron particles close to the ultrafine range (0.1–0.5 µm). Although cumulative masses of these particles are negligible in comparison to the larger particles, the health effects are more severe due to the higher penetration in the human lower respiratory tract, other body parts crossing the respiratory epithelial layers, and the larger surface area. This research investigates the effectiveness of two common commercially available N95 filtering facepieces and N95 pleated particulate respirator models against ultrafine and submicron particles. Two specific types of respirators, the N95 filtering facepiece and the N95 pleated particulate models, in both sealed and unsealed conditions to the manikin face, were tested at various commercial and academic manufacturing sites, a welding and foundry site, and an asphalt production plant. Two TSI Nanoscan SMPS nanoparticle counters were used simultaneously to collect data for particles of 10–420 nm in size from inside and outside of the respirators. While one of them represented the workplace exposure levels, the other one accounted for the exposure upon filtration through the respiratory surfaces. The results showed the particles generated by these manufacturing operations were mostly within the range of from 40 to 200 nm. Results also indicated that while the percentage of filtration levels varied based on the particle size, it remained mostly within the desired protection level of 95% for both of the N95 respirator models in sealed conditions and even for the N95 pleated particulate model in the unsealed condition. However, in the case of the N95 filtering facepiece model, unsealed respirators showed that the percentage of penetration was very high, decreasing the protection levels to 60% in some cases. Although the number of workplace airborne particle levels varied considerably, the filtration percentages were relatively consistent.
机译:制造场所,如焊接,铸造和沥青生产(烟雾),产生大量的超细颗粒,尺寸和亚微米颗粒靠近超细范围(0.1-0.5μm)。尽管与较大的颗粒相比,这些颗粒的累积质量可以忽略不计,但由于人的下呼吸道,交叉呼吸上皮层的其他身体部位以及较大的表面积,健康效果更严重。本研究调查了两个常见的商业上可获得的N95过滤面板和N95褶皱颗粒呼吸器模型对超细和亚微米粒子的有效性。在各种商业和学术制造地点,焊接和铸造遗址和沥青生产厂,测试了两种特定类型的呼吸器,N95过滤面板和N95褶皱颗粒模型,对Manikin面部的密封和未密封的条件,以及焊接部位以及沥青生产厂进行了测试。两个TSI纳米载体SMPS纳米粒子计数器同时使用,从呼吸器内部和外部收集10-420nm的粒子的数据。虽然其中一个代表了工作场所暴露水平,但另一个人在过滤通过呼吸表面时占暴露。结果表明,这些制造操作产生的颗粒主要在40至200nm的范围内。结果还表明,虽然基于粒度的过滤水平的百分比变化,但在密封条件下的N95呼吸器模型中,它仍然在95%的所需保护水平范围内,甚至在未密封条件下的N95褶皱颗粒模型也是如此。然而,在N95过滤面板模型的情况下,未密封的呼吸器表明,在某些情况下,渗透率的百分比非常高,将保护水平降至60%。尽管工作场所空气粒子水平的数量显着变化,但过滤百分比相对一致。

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