首页> 外文期刊>The Journal of Chemical Thermodynamics >(Liquid plus liquid) equilibria of ternary and quaternary systems with two hydrocarbons, an alcohol, and water at T=303.15 K. Systems containing cyclohexane, benzene, methanol, and water
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(Liquid plus liquid) equilibria of ternary and quaternary systems with two hydrocarbons, an alcohol, and water at T=303.15 K. Systems containing cyclohexane, benzene, methanol, and water

机译:T = 303.15 K时具有两种烃,一种醇和水的三元和四元体系的(液体加液体)平衡。包含环己烷,苯,甲醇和水的体系

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Tie-fine data for ternary systems including methanol (CH3OH), water (H2O), benzene (C6H6), and cyclohexane (C6H12) were investigated. Phase diagrams of {w(1) H2O + w(2) CH3OH + (1 - w(1) - w(2)) C6H12}, {w(1) H2O + w(2) C6H12 + (1 - w(1) - w(2)) C6H6}, and {w(1) CH3OH + w(2) C6H6 + (1 - w(1) - w(2)) C6H12}, where w is the mass fraction, were obtained at T = 303.15 K. A quaternary system containing these four compounds {w(1) CH3OH + w(2) C6H6 + w(3) C6H12 + (1 - w(1) - w(2) - w(3)) H2O} was also studied at the same temperature, while the system {w(1) H2O + w(2) CH3OH + (1 - w(1) - w(2)) C6H6} was taken from the literature. From our experimental results we conclude that this quaternary system presents a very small water tolerance and that phase separation could produce a considerable loss of CH3OH drawn into the aqueous phase. On the other hand, the results also show that the aqueous phase generally contains a higher concentration of C6H6 compared with C6H12. The ternary experimental results were correlated with the UNIQUAC equation, and predicted with the UNIFAC group contribution method. The equilibrium data of the four ternary systems (including that taken from the literature) were used to determine interaction parameters for the UNIQUAC equation. These parameters were then used to predict equilibrium data of this quaternary system. The UNIFAC method was also used with the same purpose. The UNI-QUAC equation appear to be more accurate than the UNIFAC method, particularly for the {w(1) CH3OH + w(2) C6H6 + (1 - w(1) - w(2)) C6H12} ternary system, because it predicts an immiscibility region much larger than the experimentally observed. However, both models have small and similar deviations between experimental and predicted values for the quaternary system. (C) 2003 Elsevier Science Ltd. All rights reserved. [References: 11]
机译:研究了包括甲醇(CH3OH),水(H2O),苯(C6H6)和环己烷(C6H12)的三元体系的精细关系数据。 {w(1)H2O + w(2)CH3OH +(1-w(1)-w(2))C6H12},{w(1)H2O + w(2)C6H12 +(1-w( 1)-w(2))C6H6}和{w(1)CH3OH + w(2)C6H6 +(1- w(1)-w(2))C6H12}得到,其中w是质量分数T = 303.15K。包含这四种化合物的四元体系{w(1)CH3OH + w(2)C6H6 + w(3)C6H12 +(1- w(1)-w(2)-w(3))还研究了在相同温度下的H2O},而系统{w(1)H2O + w(2)CH3OH +(1- -w(1)-w(2))C6H6}取自文献。根据我们的实验结果,我们得出结论,该四元体系的水耐受性非常小,相分离可能会导致大量损失的CH3OH吸入水相。另一方面,结果还表明,与C6H12相比,水相通常包含更高浓度的C6H6。三元实验结果与UNIQUAC方程相关,并通过UNIFAC组贡献法进行预测。使用四个三元系统的平衡数据(包括从文献中获得的数据)来确定UNIQUAC方程的相互作用参数。然后将这些参数用于预测该四元系统的平衡数据。 UNIFAC方法也用于相同目的。 UNI-QUAC方程似乎比UNIFAC方法更精确,特别是对于{w(1)CH3OH + w(2)C6H6 +(1- w(1)-w(2))C6H12}三元系统,因为它预测了一个比实验观察到的更大的不混溶区域。但是,这两个模型在四元系统的实验值和预测值之间都有很小且相似的偏差。 (C)2003 Elsevier ScienceLtd。保留所有权利。 [参考:11]

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