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Water Vapor Depletion in the DMT Continuous-Flow CCN Chamber: Effects on Supersaturation and Droplet Growth

机译:DMT连续流CCN腔室中的水蒸气耗竭:对过饱和和液滴生长的影响

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摘要

The continuous-flow streamwise thermal-gradient cloud condensation nuclei counter (CFSTGC) is a commercially available instrument that is widely used for laboratory and field measurements of cloud condensation nuclei (CCN). All studies to date assume that the supersaturation profile generated in its growth chamber is not influenced by the condensation of water vapor upon the growing CCN. The validity of this assumption, however, has never been systematically explored. This work examines when water vapor depletion from CCN can have an important impact on supersaturation, measured CCN concentration, and droplet growth. A fully coupled numerical flow model of the instrument is used to simulate the water vapor supersaturation, temperature, velocity profiles, and CCN growth in the CFSTGC for a wide range of operation and CCN concentrations. Laboratory CCN activation experiments of polydisperse calibration aerosol (with a DMT CFSTGC operated in constant flow mode) are used to evaluate the simulations. The simulations and laboratory experiments are then generalized using a scaling analysis of the conditions that lead to supersaturation depletion. We find that CCN concentrations below 5000 cm−3 (regardless of their activation kinetics or instrument operating conditions) do not decrease supersaturation and outlet droplet diameter by more than 10%. For larger CCN concentrations, a simple correction can be applied that addresses both the depression in supersaturation and droplet size.
机译:连续流流式热梯度云凝结核计数器(CFSTGC)是一种可商购的仪器,广泛用于实验室和野外测量云凝结核(CCN)。迄今为止,所有研究均假设在其生长室中产生的过饱和度曲线不受水蒸气在CCN上凝结的影响。但是,从未系统地探讨过这种假设的有效性。这项工作研究了何时从CCN中消耗水蒸气会对过饱和度,测量的CCN浓度和液滴生长产生重要影响。该仪器的完全耦合数值流模型用于模拟CFSTGC中的水蒸气过饱和度,温度,速度曲线和CCN增长,适用于各种操作和CCN浓度。多分散校准气溶胶的实验室CCN活化实验(使用DMT CFSTGC以恒定流量模式运行)用于评估模拟。然后使用对导致过饱和消耗的条件进行比例分析,对模拟和实验室实验进行概括。我们发现低于5000 cm 3 的CCN浓度(无论其激活动力学或仪器操作条件如何)都不会使过饱和度和出口液滴直径降低10%以上。对于较大的CCN浓度,可以应用简单的校正方法来解决过饱和度的降低和液滴尺寸的问题。

著录项

  • 来源
    《Aerosol Science and Technology》 |2011年第5期|p.604-615|共12页
  • 作者单位

    School of Earth and Atmospheric Sciences, Georgia Institute of Technology, Atlanta, Georgia, USA School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 00:57:40

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