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Experimental methods and prediction with COSMO-RS to determine partition coefficients in complex surfactant systems

机译:确定复杂表面活性剂系统中分配系数的实验方法和COSMO-RS预测

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摘要

Surfactant-based separation processes are a promising alternative to conventional organic solvent processes. A crucial parameter to describe the efficiency of such processes is the partition coefficient between the surfactant aggregates (micelles) and the aqueous bulk phase. In this work, several experimental methods to determine these partition coefficients (micellar liquid chromatography, micellar enhanced ultrafiltration, and cloud point extraction) are evaluated and compared. In addition, these results are compared to predictions with the thermodynamic model COSMO-RS. In particular, systems with the nonionic surfactant TritonX-100 are studied. The partition equilibria of various solutes (pyrene, naphthalene, phenanthrene, phenol, 3-methoxyphenol, and vanillin) and the influence of different additives (alcohols) are investigated. All experimental methods show very good reproducibility. Moreover, the results from different methods are in good agreement, supplementing one another concerning the temperature ranges. Notably, the COSMO-RS model is capable of predicting partition coefficients between micelles and water in the investigated temperature range and at different alcohol concentrations. The results demonstrate the potential of the model COSMO-RS to facilitate the selection of optimized process parameters for a given separation problem. By predicting partition equilibria in multicomponent systems, the selection of surfactant, temperature, and appropriate additives can be facilitated.
机译:基于表面活性剂的分离方法是常规有机溶剂方法的有前途的替代方法。描述这种方法的效率的关键参数是表面活性剂聚集体(胶束)和本体水相之间的分配系数。在这项工作中,评估和比较了确定这些分配系数的几种实验方法(胶束液相色谱,胶束增强超滤和浊点萃取)。此外,将这些结果与热力学模型COSMO-RS的预测结果进行了比较。特别是,研究了具有非离子表面活性剂TritonX-100的体系。研究了各种溶质(py,萘,菲,酚,3-甲氧基苯酚和香兰素)的分配平衡,以及不同添加剂(醇)的影响。所有实验方法均显示出非常好的重现性。此外,不同方法的结果吻合得很好,在温度范围方面相互补充。值得注意的是,COSMO-RS模型能够在研究的温度范围和不同酒精浓度下预测胶束与水之间的分配系数。结果证明了模型COSMO-RS有助于针对给定的分离问题选择最佳工艺参数的潜力。通过预测多组分系统中的分配平衡,可以促进表面活性剂,温度和适当添加剂的选择。

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