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Hygroscopic properties of water-soluble matter and humic-like organics in atmospheric fine aerosol

机译:大气细气溶胶中水溶性物质和腐殖质类有机物的吸湿特性

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摘要

Ambient continental-rural fine aerosol (K-puszta, Hungary, PM1.5) was sampled on quartz fibre filters in winter and summer 2001. Water-soluble matter (WSM) was extracted in MilliQ-water, and, in a second step, solid phase extraction was used to isolate the less hydrophilic fraction (ISOM) of the water-soluble organic matter (WSOM) from remaining inorganic salts and "most" hydrophilic organic matter (MHOM). This approach allowed ISOM, which constitutes the major fraction of WSOM, to be isolated from ambient aerosols and investigated in pure form. Hygroscopic properties of both WSM and ISOM extracts as well as of aquatic reference fulvic and humic acids were investigated using a Hygroscopicity Tandem Differential Mobility Analyser (H-TDMA). ISOM deliquesced between 30% and 60% relative humidity (RH), and hygroscopic growth factors at 90% RH ranged from 1.08 to 1.17. The hygroscopicity of ISOM is comparable to secondary organic aerosols obtained in smog chamber experiments, but lower than the hygroscopicity of highly soluble organic acids. The hygroscopic behaviour of investigated fulvic and humic acids had similarities to ISOM, but hygroscopic growth factors were slightly smaller and deliquescence was observed at higher RH (75-85% and 85-95% RH for fulvic acid and humic acid, respectively). These differences probably originate from larger average molecular mass and lower solubility of fulvic and humic acids. Inorganic composition data, measured ISOM hygroscopicity, and a presumed value for the hygroscopicity of the small remaining MHOM fraction were used to predict hygroscopic growth of WSM extracts. Good agreement between model prediction and measured water uptake was observed with differences (by volume) ranging from +1% to -18%. While deliquescence properties of WSM extracts were mainly determined by the inorganic salts (42-53 wt % of WSM), the WSOM accounted for a significant fraction of particulate water. At 90% RH, according to model predictions and measurements, about 80-62% of particulate water in the samples are associated with inorganic salts and about 20-38% with WSOM. The relative contributions of both distinguished WSOM fractions, ISOM and MHOM, remains uncertain since MHOM was not available in isolated form, but the results suggest that the less abundant MHOM is also important due to its presumably larger hygroscopicity.
机译:在2001年冬季和夏季,用石英纤维滤池对周围的农村细气溶胶(K-puszta,匈牙利,PM 1.5 )进行了采样。在MilliQ水中提取了水溶性物质(WSM),然后在第二步中,使用固相萃取将水溶性有机物(WSOM)的亲水性较低的部分(ISOM)与剩余的无机盐和“最”亲水性有机物质(MHOM)分离。这种方法可以将构成WSOM主要部分的ISOM与周围的气溶胶分离并以纯净形式进行研究。使用吸湿性串联差动分析仪(H-TDMA)研究了WSM和ISOM提取物以及水生参考黄腐酸和腐殖酸的吸湿性能。 ISOM的相对湿度(RH)在30%至60%之间,在90%RH时吸湿性生长因子在1.08至1.17之间。 ISOM的吸湿性与烟雾室实验中获得的二次有机气溶胶相当,但低于高度可溶性有机酸的吸湿性。被研究的黄腐酸和腐殖酸的吸湿行为与ISOM相似,但吸湿性生长因子略小,在较高的相对湿度下观察到潮解(黄腐酸和腐殖酸的相对湿度分别为75-85%和85-95%)。这些差异可能源于较大的平均分子量以及黄腐酸和腐殖酸的较低溶解度。 无机组成数据,测得的ISOM吸湿性和少量MHOM残留物的吸湿性推定值用于预测吸湿性WSM提取物的生长。观察到模型预测与测得的吸水量之间的良好一致性,差异(按体积计)在+ 1%至-18%之间。虽然WSM提取物的潮解性能主要由无机盐(占WSM的42-53 wt%)确定,但WSOM占颗粒水的很大一部分。根据模型预测和测量,在90%RH的条件下,样品中约80-62%的颗粒水与无机盐相关,而WSOM约20-38%。由于无法分离获得MHOM,因此两个不同的WSOM馏分ISOM和MHOM的相对贡献仍然不确定,但是结果表明,较低的MHOM由于其较大的吸湿性也很重要。

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