首页> 外文期刊>Journal of Membrane Science >Microemulsion breakdown by pervaporation technique: the cyclohexane/water-butanol/sodium dodecylsulfate system
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Microemulsion breakdown by pervaporation technique: the cyclohexane/water-butanol/sodium dodecylsulfate system

机译:全蒸发技术分解微乳液:环己烷/水/正丁醇/十二烷基硫酸钠系统

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摘要

Preliminary results obtained on destabilizing microemulsions made up of cyclohexane, water, n-butanol, and sodium dodecylsuIfate (SDS) using pervaporation membranes are promising. The hydrophobic/hydrophilic character of the membrane employed makes preferential removal of one of the microemulsion components possible. This leads to microemulsion breakdown. While cyclohexane permeates through hydrophobic polydimethylsiloxane membranes, water permeates through polyvinyl alcohol membranes. Removal of either component leads to microemulsion collapse. For instance, when 13.8 vol./100 of cyclohexane is removed from the cyclohexane-rich microemulsion: l:87:8:4 (water: cyclohexane: n-butanol: SDS, re- spectively (in wt./100), destabilization occurs. The flux rate and the enrichment factor of the component removed through the membrane were found to be concentration dependent. The variations of both parameters with time for two microemulsions, one rich in cyclohexane and the other rich in water, were examined as function Qf temperature. The pervaporation permeation rate goes up at elevated temperature, but enrichment thctor diminishes. The optimum volume of the pervaporate required to produce the destabilization of the microemulsion changes with temperature according to a linear Arrhenius relationship with an activation energy of 4.56 kcal mol~-l.
机译:使用全蒸发膜使由环己烷,水,正丁醇和十二烷基硫酸钠(SDS)组成的微乳液失稳所获得的初步结果令人鼓舞。所使用的膜的疏水/亲水特性使得优先除去微乳液组分之一成为可能。这导致微乳液分解。当环己烷透过疏水的聚二甲基硅氧烷膜时,水透过聚乙烯醇膜。除去任何一种组分都会导致微乳状液塌陷。例如,当从富含环己烷的微乳液中除去13.8 vol./100的环己烷时:1:87:8:4(水:环己烷:正丁醇:SDS,分别(以wt./100计)),失稳发现通过膜去除的组分的通量速率和富集因子与浓度有关,两种微乳(一种富含环己烷,另一种富含水)的两个参数随时间的变化作为函数Qf进行了检验。温度升高时,渗透汽化速率增加,但富集度降低;产生微乳液去稳定作用所需的渗透汽化剂的最佳体积随温度的变化而变化,其线性线性关系与活化能为4.56 kcal mol〜 l。

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