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北京冬季颗粒物吸湿性和CCN活性的垂直分布:对黑碳吸湿性转变阈值的洞察

Vertical profile of particle hygroscopicity and CCN effectiveness during winter in Beijing: insight into the hygroscopicity transition threshold of black carbon.

作者信息

Hu Dawei, Wang Yu, Yu Chenjie, Xie Qiaorong, Yue Siyao, Shang Dongjie, Fang Xin, Joshi Rutambhara, Liu Dantong, Allan James, Wu Zhijun, Hu Min, Fu Pingqing, McFiggans Gordon

机构信息

School of Earth and Environmental Sciences, University of Manchester, UK.

出版信息

Faraday Discuss. 2021 Mar 1;226:239-254. doi: 10.1039/d0fd00077a. Epub 2020 Nov 26.

DOI:10.1039/d0fd00077a
PMID:33241817
Abstract

The hygroscopicity and ability of aerosol particles to act as cloud condensation nuclei (CCN) is important in determining their lifetime and role in aerosol-cloud interactions, thereby influencing cloud formation and climate. Previous studies have used the aerosol hygroscopic properties measured at the ground to evaluate the influence on cloud formation in the atmosphere, which may introduce uncertainty associated with aerosol hygroscopicity variability with altitude. In this study, the CCN behaviour and hygroscopic properties of daily filter collections of PM from three different heights (8, 120, 260 m) on a tower in Beijing were determined in the laboratory using water, water/methanol and methanol as the atomization solvents. Whilst there was substantial temporal variability in particle concentration and composition, there was little obvious difference in aerosol CCN and hygroscopic behaviour at different heights, although the planetary boundary layer height (PBLH) reduced to below the tower height during the nighttime, suggesting that use of surface hygroscopicity measurements is sufficient for the estimation of aerosol particle activation in clouds. Additionally, the critical coating thickness (in terms of mass ratio of coating/refractory BC, MRc) defining the BC transition between being hydrophobic to hydrophilic, was determined by combining hygroscopic tandem differential mobility analyser (H-TDMA), centrifugal particle mass analyzer (CPMA) and single particle soot photometer (SP2) measurements. The MRc of 250 nm BC-containing particles increased from a background value of between 0.8 and 1.6 to around 4.6 at the onset of the growth event of nanoparticles, decreasing monotonically back to the background level as the event progressed. This indicates that large particles do not act as an effective pre-existing condensation sink of the hygroscopic vapours during the nanoparticle growth events, leading to the 250 nm BC particles requiring more coating materials to transition between being hydrophobic and hydrophilic. These findings show that large particles may be less important in suppressing the new particle formation and subsequent growth in the atmosphere.

摘要

气溶胶颗粒的吸湿性以及充当云凝结核(CCN)的能力对于确定其寿命以及在气溶胶-云相互作用中的作用至关重要,进而影响云的形成和气候。以往的研究利用在地面测量的气溶胶吸湿特性来评估对大气中云形成的影响,这可能会引入与气溶胶吸湿性随高度变化相关的不确定性。在本研究中,在北京一座塔上三个不同高度(8米、120米、260米)每日采集的PM过滤器样本,在实验室中以水、水/甲醇和甲醇作为雾化溶剂,测定了其CCN行为和吸湿特性。虽然颗粒浓度和组成存在显著的时间变化,但不同高度的气溶胶CCN和吸湿行为几乎没有明显差异,尽管夜间行星边界层高度(PBLH)降至塔高以下,这表明使用地面吸湿测量足以估算云中气溶胶颗粒的活化情况。此外,通过结合吸湿串联差分迁移率分析仪(H-TDMA)、离心颗粒质量分析仪(CPMA)和单颗粒烟尘光度计(SP2)的测量,确定了定义含BC颗粒从疏水转变为亲水的临界包覆厚度(以包覆/难熔BC的质量比,MRc表示)。含250纳米BC颗粒的MRc在纳米颗粒生长事件开始时从背景值0.8至1.6增加到约4.6,随着事件进展单调下降回到背景水平。这表明在纳米颗粒生长事件期间,大颗粒并非吸湿蒸汽有效的预先存在的凝结汇,导致250纳米BC颗粒需要更多的包覆材料来实现疏水和亲水之间的转变。这些发现表明,大颗粒在抑制大气中新颗粒形成及后续生长方面可能不太重要。

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