Application of several activity coefficient models to water-organic-electrolyte aerosols of atmospheric interest

被引:60
作者
Raatikainen, T [1 ]
Laaksonen, A [1 ]
机构
[1] Univ Kuopio, Dept Appl Phys, FIN-70211 Kuopio, Finland
来源
ATMOSPHERIC CHEMISTRY AND PHYSICS | 2005年 / 5卷
关键词
D O I
10.5194/acp-5-2475-2005
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In this work, existing and modified activity coefficient models are examined in order to assess their capabilities to describe the properties of aqueous solution droplets relevant in the atmosphere. Five different water-organic-electrolyte activity coefficient models were first selected from the literature. Only one of these models included organics and electrolytes which are common in atmospheric aerosol particles. In the other models, organic species were solvents such as alcohols, and important atmospheric ions like NH4+ could be missing. The predictions of these models were compared to experimental activity and solubility data in aqueous single electrolyte solutions with 31 different electrolytes. Based on the deviations from experimental data and on the capabilities of the models, four predictive models were selected for fitting of new parameters for binary and ternary solutions of common atmospheric electrolytes and organics. New electrolytes (H+, NH4+, Na+, Cl-, NO3- and SO42-) and organics (dicarboxylic and some hydroxy acids) were added and some modifications were made to the models if it was found useful. All new and most of the existing parameters were fitted to experimental single electrolyte data as well as data for aqueous organics and aqueous organic-electrolyte solutions. Unfortunately, there are very few data available for organic activities in binary solutions and for organic and electrolyte activities in aqueous organic-electrolyte solutions. This reduces model capabilities in predicting solubilities. After the parameters were fitted, deviations from measurement data were calculated for all fitted models, and for different data types. These deviations and the calculated property values were compared with those from other non-electrolyte and organic-electrolyte models found in the literature. Finally, hygroscopic growth factors were calculated for four 100 nm organic-electrolyte particles and these predictions were compared to experimental data and to predictions from other models. All of the newly fitted models show good agreement with experimental water activity data in binary and ternary solutions. One of the models is for activities of non-electrolytes only, but the other three models show quite small deviations from measured electrolyte activities. Because there were not enough experimental data for organic and electrolyte activities, some models show bigger deviation for mutual deliquescence relative humidities of organic-electrolyte particles, but calculated growth factors for liquid droplets are quite close to the experimental data. Even in cases with somewhat bigger deviations, the results can be considered satisfactory, because they were calculated based mainly on the predictive properties of the models.
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页码:2475 / 2495
页数:21
相关论文
共 59 条
[1]   STATISTICAL THERMODYNAMICS OF LIQUID-MIXTURES - NEW EXPRESSION FOR EXCESS GIBBS ENERGY OF PARTLY OR COMPLETELY MISCIBLE SYSTEMS [J].
ABRAMS, DS ;
PRAUSNITZ, JM .
AICHE JOURNAL, 1975, 21 (01) :116-128
[2]   REPRESENTATION OF VAPOR-LIQUID-EQUILIBRIA IN WATER-ALCOHOL ELECTROLYTE MIXTURES WITH A MODIFIED UNIFAC GROUP-CONTRIBUTION METHOD [J].
ACHARD, C ;
DUSSAP, CG ;
GROS, JB .
FLUID PHASE EQUILIBRIA, 1994, 98 :71-89
[3]   Isopiestic determination of the osmotic and activity coefficients of ZnSO4(aq) at T=298.15 K, and the standard potential of the electrochemical cell ZnHgx(two phase)|ZnSO4(aq)|PbSO4(s)|PbHgx(two phase) [J].
Albright, JG ;
Rard, JA ;
Serna, S ;
Summers, EE ;
Yang, MC .
JOURNAL OF CHEMICAL THERMODYNAMICS, 2000, 32 (11) :1447-1487
[4]  
[Anonymous], 1991, ACTIVITY COEFFICIENT, DOI DOI 10.1201/9781351069472
[5]   Prediction of multicomponent inorganic atmospheric aerosol behavior [J].
Ansari, AS ;
Pandis, SN .
ATMOSPHERIC ENVIRONMENT, 1999, 33 (05) :745-757
[6]   The vapour pressure of water over saturated solutions of sodium sulfate, calcium bromide, ferric chloride, zinc nitrate, calcium nitrate, and lithium nitrate at temperatures from 278.15 K to 323.15 K [J].
Apelblat, A ;
Korin, E .
JOURNAL OF CHEMICAL THERMODYNAMICS, 2002, 34 (10) :1621-1637
[7]   OSMOTIC AND ACTIVITY-COEFFICIENTS OF HO2CCH2C(OH)(CO2H)CH2CO2H (CITRIC-ACID) IN CONCENTRATED AQUEOUS-SOLUTIONS AT TEMPERATURES FROM 298.15 K TO 318.15 K [J].
APELBLAT, A ;
DOV, M ;
WISNIAK, J ;
ZABICKY, J .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1995, 27 (04) :347-353
[8]   Vapour pressures of saturated aqueous solutions of ammonium iodide, potassium iodide, potassium nitrate, strontium chloride, lithium sulphate, sodium thiosulphate, magnesium nitrate, and uranyl nitrate from T = (278 to 323) K [J].
Apelblat, A ;
Korin, E .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1998, 30 (04) :459-471
[9]   The vapour pressures of saturated aqueous solutions of sodium chloride, sodium bromide, sodium nitrate, sodium nitrite, potassium iodate, and rubidium chloride at temperatures from 227 K to 323 K [J].
Apelblat, A ;
Korin, E .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1998, 30 (01) :59-71
[10]   THE VAPOR-PRESSURE OF WATER OVER SATURATED AQUEOUS-SOLUTIONS OF MALIC, TARTARIC, AND CITRIC ACIDS, AT TEMPERATURES FROM 288-K TO 323-K [J].
APELBLAT, A ;
DOV, M ;
WISNIAK, J ;
ZABICKY, J .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1995, 27 (01) :35-41