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Mixing state of printer generated ultraflne particles: Implications for the complexity of indoor aerosols

机译:打印机的混合状态产生超薄颗粒:对室内气溶胶复杂性的影响

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摘要

The operation of laser printers can lead to the emission of high numbers of ultrafine particles. Evidence on the toxicology and adverse health effects of these particles has been mounting, however few studies have investigated the complexity of these particles in terms of their volatility, hygroscopicity and mixing state. This study utilized a Volatility Hygroscopic Tandem Differential Mobility Analyzer (VH-TDMA) to explore the internal and external mixing states of printer-generated particles. Up to 6.0 & times; 105 particles. cm-3 were observed during the operation of the laser printer, and these ultrafine particles could be classified into three groups, each with its own particular volatility (i.e., gradually shrinkable, suddenly shrinkable and expandable), owing to the different internal mixing states. In particular, we propose shell-core structures to explain the special volatility of these particles. In addition, whilst the majority of the generated particles were initially hydrophobic at 90% relative humidity (RH), it was observed that there were a very small number of volatilized particles (less than 5%) that shrank (i.e., decreased in size) after humidification. This study can be used as a model for investigating the complex particle formation processes in relation to secondary organic aerosols from other sources. Furthermore, our results shed light on the complexity of indoor aerosols, which should be investigated further in future indoor air quality studies.
机译:激光打印机的操作可以导致高量超细颗粒的发射。有关这些颗粒的毒理学和不良健康影响的证据已经安装,但是在挥发性,吸湿性和混合状态方面,少数研究已经研究了这些颗粒的复杂性。该研究利用挥发性吸湿性串联差分移动分析仪(VH-TDMA)来探索打印机产生的颗粒的内部和外部混合状态。高达6.0和时间; 105个颗粒。在激光打印机的操作期间观察到CM-3,并且这些超细颗粒可以将其分为三组,每个组合具有其特定的挥发性(即,逐渐收缩,突然收缩,突然收缩,可扩展),由于不同的内部混合状态。特别是,我们提出了壳体结构来解释这些颗粒的特殊挥发性。另外,在大部分产生的颗粒上最初在90%相对湿度(RH)下疏水,而是观察到较少数量的挥发颗粒(小于5%),其缩小(即,尺寸减小)加湿后。该研究可以用作研究来自其他来源的二次有机气溶胶的复杂颗粒形成过程的模型。此外,我们的结果阐明了室内气溶胶的复杂性,这应该在未来的室内空气质量研究中进一步调查。

著录项

  • 来源
    《Atmospheric environment》 |2021年第8期|118550.1-118550.9|共9页
  • 作者单位

    Jinan Univ Inst Environm & Climate Res Guangzhou 511442 Peoples R China|Jinan Univ QUT JNU Joint Lab Air Qual Sci & Management Guangzhou Peoples R China;

    Queensland Univ Technol Inst Hlth & Biomed Innovat Int Lab Air Qual & Hlth GPO Box 2434 Brisbane Qld 4001 Australia|Jinan Univ QUT JNU Joint Lab Air Qual Sci & Management Guangzhou Peoples R China;

    Queensland Univ Technol Inst Hlth & Biomed Innovat Int Lab Air Qual & Hlth GPO Box 2434 Brisbane Qld 4001 Australia|Paul Scherrer Inst Lab Atmospher Chem CH-5232 Villigen Switzerland;

    Jinan Univ Inst Environm & Climate Res Guangzhou 511442 Peoples R China;

    Hong Kong Polytech Univ Dept Civil & Environm Engn Hong Kong Peoples R China;

    Queensland Univ Technol Inst Hlth & Biomed Innovat Int Lab Air Qual & Hlth GPO Box 2434 Brisbane Qld 4001 Australia|Jinan Univ QUT JNU Joint Lab Air Qual Sci & Management Guangzhou Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    SOA; VH-TDMA; Indoor air quality; Office equipment; Hygroscopicity dynamic index;

    机译:SOA;VH-TDMA;室内空气质量;办公设备;吸湿性动态指数;

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