GSTDTAP  > 地球科学
DOI10.5194/acp-18-14925-2018
Measured particle water uptake enhanced by co-condensing vapours
Hu, Dawei; Topping, David; McFiggans, Gordon
2018-10-17
发表期刊ATMOSPHERIC CHEMISTRY AND PHYSICS
ISSN1680-7316
EISSN1680-7324
出版年2018
卷号18期号:20页码:14925-14937
文章类型Article
语种英语
国家England
英文摘要

Co-condensation of inorganic or organic vapours on growing droplets could significantly enhance both cloud condensation nucleus (CCN) and cloud droplet number concentration, thereby influencing cloud albedo and climate. Until now, there has been very few direct observational evidence of this process. We have measured the growth of inorganic salt particles exposed to both water and organic vapours at 291.15K in the laboratory, showing that co-condensation of the organic vapours significantly enhances water uptake of aerosols. After exposure to water and propylene glycol vapours, ammonium sulfate particles grew much more than any previously measured particles, inorganic or organic, at the same relative humidity (RH). The maximum equivalent hygroscopicity parameter, kappa, was observed to reach up to 2.64, very much higher than values (0.1 < kappa < 0.9) measured for atmospheric particulate matter using conventional instrumentation, which may be blind to this effect. Under a continuously replenishing organic vapour field, the particles never reached equilibrium owing to the presence of the involatile solute and were observed to continuously grow with increasing exposure time, in agreement with model simulations. Co-condensation of butylene glycol (which has similar volatility but, at a(w) = 0.9, a higher S-org than propylene glycol in our system) and tri-ethylene glycol (which has lower volatility and, at a(w) = 0.9, lower S-org than propylene glycol in our system) vapours was additionally measured in this study. The maximum equivalent hygroscopicity parameter, kappa, reached as high as 8.48 for ammonium sulfate particles exposed to water and tri-ethylene glycol vapours at 90% RH. This enhancement of particle water uptake through co-condensation of vapours constitutes the direct measurement of this process, which may substantially influence cloud droplet formation in the atmosphere. In addition, the model simulations for exposure to co-condensing butylene glycol and tri-ethylene glycol vapours with water show that there are factors other than S-org which influence the co-condensation of semi-volatile organic compounds (SVOCs) that are as yet not understood.


领域地球科学
收录类别SCI-E
WOS记录号WOS:000447633300004
WOS关键词CLOUD DROPLET ACTIVATION ; NITRIC-ACID ; CONDENSATION ; MIXTURES ; NUCLEUS ; GROWTH ; NUMBER ; IMPACT ; SIZE
WOS类目Environmental Sciences ; Meteorology & Atmospheric Sciences
WOS研究方向Environmental Sciences & Ecology ; Meteorology & Atmospheric Sciences
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/27246
专题地球科学
作者单位Univ Manchester, Sch Earth & Environm Sci, Manchester, Lancs, England
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Hu, Dawei,Topping, David,McFiggans, Gordon. Measured particle water uptake enhanced by co-condensing vapours[J]. ATMOSPHERIC CHEMISTRY AND PHYSICS,2018,18(20):14925-14937.
APA Hu, Dawei,Topping, David,&McFiggans, Gordon.(2018).Measured particle water uptake enhanced by co-condensing vapours.ATMOSPHERIC CHEMISTRY AND PHYSICS,18(20),14925-14937.
MLA Hu, Dawei,et al."Measured particle water uptake enhanced by co-condensing vapours".ATMOSPHERIC CHEMISTRY AND PHYSICS 18.20(2018):14925-14937.
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