Liquid–Liquid Equilibrium Behavior of Ternary Systems Comprising Biodiesel + Glycerol and Triglyceride + Methanol: Experimental Data and Modeling

优等 非随机双液模型 生物柴油 三元运算 三元数制 生物柴油生产 热力学 甲醇 甘油 色谱法 溶解度 材料科学 化学 活度系数 相(物质) 有机化学 水溶液 催化作用 物理 程序设计语言 计算机科学
作者
Lingmei Yang,Shiyou Xing,Xianbin Teng,Rukuan Liu,Zhongming Wang,Baining Lin,Pengmei Lv,Akram Ali Nasser Mansoor Al‐Haimi,Fatma Yehia,Wen Luo
出处
期刊:Catalysts [Multidisciplinary Digital Publishing Institute]
卷期号:14 (5): 320-320
标识
DOI:10.3390/catal14050320
摘要

Having a comprehensive knowledge of phase equilibrium is advantageous for industrial simulation and design of chemical processes. For further acquisition of primary data to facilitate the separation and purification of waste oil biodiesel systems, a liquid–liquid equilibrium (LLE) tank is deployed for the ternary system of waste oil biodiesel + methanol + glycerin, thereby enhancing the precision and efficiency of the process. The phase equilibrium system was constructed under the influence of atmospheric pressure at precise temperatures of 303.15 K, 313.15 K, and 323.15 K. The equilibrium components of each substance were analyzed by employing high-temperature gas chromatography, a sophisticated analytical method that enables the identification and quantification of individual components of a sample. Moreover, the ternary liquid–liquid equilibrium data were correlated by implementing the NRTL and UNIQUAC activity coefficient models. Subsequently, the binary interaction parameters of the ternary system were derived by conducting regression analysis. The experimental data demonstrated that the presence of lower methanol content in the system resulted in nearly immiscible biodiesel and glycerol phases, which ultimately facilitated the separation of biodiesel and glycerol. Conversely, with the increase in methanol content, the mutual solubility of biodiesel and glycerol was observed to increase gradually. The results showed that the calculated values of the NRTL and UNIQUAC models aligned well with the experimental values. The root-mean-square deviations of the NRTL and UNIQUAC models at 313.15 K were 2.76% and 3.56%, respectively.

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