[Dust collection efficiency of commercial gas collection tubes].

Mitsuhiko Hata, Masami Furuuchi, Pisith Sok, Muhhamad Amin, Yuto Umehara, Masashi Takao, Ichiro Higashikubo, Tsutoshi Imanaka, Yoshihiro Suzuki, Ai Nakamura, Masahiko Yamazaki
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引用次数: 0

Abstract

Objectives: Gas sampling tubes are essential tools for the evaluation of air quality in work environments. It adsorbs toxic gaseous matters onto the surface of various granular adsorbents, such as silica gel or activated carbon packed in a thin glass tube, for quantitative analysis by gas chromatography. Currently, most of the semi-volatile matters are evaluated via aerosol filtration or solid-phase gas adsorption depending on the main phase of the substances; however, only a few substances have a sampling protocol regarding both solid and gaseous phases. Therefore, semi-volatile components evaluated by the solid-phase adsorption may result in the underestimation of the component concentrations due to particulate components passing through and remaining in the adsorbent. To highlight issues on sampling of semi-volatile matters by the solid-phase adsorption method, the collection efficiency of aerosol particles by 17 commercial gas sampling tubes were measured via pressure drop.

Methods: To measure the particle collection efficiency of the gas collection tubes, precise control and dilution of the aerosol particle monitors are essential. However, we cannot apply typical filter test methods at a lower filtration flow rate than that of the aerosol particles monitors. Therefore, we developed a new experimental method that considers flow adjustment between the aerosol monitors. By assuming two specific particle size distributions and five inlet conditions, the collection efficiencies of total mass particles are estimated. From the gas-particle partitioning ratio of 16 polycyclic aromatic hydrocarbons (PAHs) in a coal tar pitch manufacturing industry, the underestimation of the concentration of semi-volatile matters using the gas collection tubes has been discussed.

Results: The aerosol particles were collected in all kinds of layers in the gas sampling tubes, such as in the glass wool cap, gas adsorbent granular bed, and polyurethane foam. Furthermore, the collection efficiency curve of all 17 gas sampling tubes tested showed similar trends; a valley around particle sizes ranging from 0.2-0.3 μm between high collection zones below 0.1 μm and above 1 μm was observed. The observations suggested granular bed filters collection mechanisms such as inertial impaction, Brownian diffusion, gravity, and interception as same as air filters.

Conclusions: Solid-phase collection can underestimate the concentrations of multi-phase matters. Thus, we wish to highlight the importance of solid-phase collection methods along with filtration collection methods to collect all phases of semi-volatile matters.

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【商用集气管的集尘效率】。
目的:气体采样管是评价工作环境空气质量的重要工具。它将有毒气体物质吸附到各种颗粒状吸附剂的表面,如装在薄玻璃管中的硅胶或活性炭,用于气相色谱法的定量分析。目前,根据物质的主相,大多数半挥发性物质是通过气溶胶过滤或固相气体吸附来评估的;然而,只有少数物质有关于固相和气相的取样方案。因此,通过固相吸附评估的半挥发性组分可能会由于颗粒组分通过并留在吸附剂中而导致对组分浓度的低估。为了突出固相吸附法采集半挥发性物质的问题,采用压降法测量了17根商用气体采样管对气溶胶颗粒的收集效率。方法:为了测量气体收集管的颗粒收集效率,必须对气溶胶颗粒监测仪进行精确控制和稀释。然而,我们不能在比气溶胶颗粒监测仪更低的过滤流速下应用典型的过滤测试方法。因此,我们开发了一种新的实验方法,考虑了气溶胶监测仪之间的流量调节。通过假设两种特定粒径分布和五种进口条件,估计了总质量颗粒的收集效率。从某煤焦油沥青制造工业中16种多环芳烃(PAHs)的气粒分配比出发,讨论了煤气收集管对半挥发物浓度的低估。结果:气采管中玻璃棉帽、气体吸附剂颗粒床、聚氨酯泡沫等各层均有气溶胶颗粒被采集。此外,17根气体采样管的收集效率曲线也呈现出相似的趋势;在0.1 μm以下的高收集区和1 μm以上的高收集区之间,粒径在0.2 ~ 0.3 μm之间形成了一个谷。观察结果表明,颗粒床过滤器的收集机制,如惯性撞击、布朗扩散、重力和拦截与空气过滤器相同。结论:固相法可能会低估多相物的浓度。因此,我们希望强调固相收集方法以及过滤收集方法收集所有相的半挥发性物质的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
0.30
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40
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