Modeling of the Vapor-Liquid Equilibria Properties of Binary Mixtures for Refrigeration Machinery

Pub Date : 2023-04-27 DOI:10.5541/ijot.1140088
Youcef Maalem, Youcef Tamene, H. Madani
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Abstract

The presence of both critical and azeotropic states in the vapor-liquid equilibria (VLE) is a very important issue in the chemical and refrigeration engineering. The knowledge of the phase behavior (subcritical phase/supercritical phase) of refrigerant allows designing and optimizing the refrigeration industrials processes. However, it is rare to find data for this information, which poses a great challenge for researchers to develop predictive and correlative thermodynamic models. The present study proposes the computation of the compositions and pressures of critical and azeotropic points of the isothermal VLE as well as the correlation of experimental VLE data. Firstly, experimental data (PTxy) was used to predict the vapor-liquid phase of both critical and azeotropic behaviors and to determine their properties using the relative volatility model. Secondly, the thermodynamic model (PR-MC-WS-NRTL) was applied to correlate the data of the binary refrigerant systems and describe their isothermal (VLE) behavior. The results proved that there is good agreement between predicted values obtained by the developed model and the experimental reference data. The relative error of both critical and azeotropic properties does not exceed 4.3 % for the molar fraction and 7.5 % for the pressure using relative volatility model. On other hand the relative deviation is respectively less than 2.60 % and 2.58 % for the liquid and vapor mole fractions using (PR-MC-WS-NRTL) model. This shows the ability of these models to give a reliable solution to predict and modulate the phase behavior of the binary refrigerant systems.
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制冷机械二元混合物汽液平衡特性的建模
汽液平衡中临界态和共沸态的存在是化学和制冷工程中一个非常重要的问题。制冷剂的相行为(亚临界相/超临界相)的知识允许设计和优化制冷工业过程。然而,这些信息的数据很少,这给研究人员建立预测和相关的热力学模型带来了很大的挑战。本研究提出了等温气液流临界点和共沸点组成和压力的计算,以及气液流实验数据的相关性。首先,利用实验数据(PTxy)预测了气液相的临界和共沸行为,并利用相对挥发性模型确定了它们的性质。其次,应用热力学模型(PR-MC-WS-NRTL)对二元制冷剂系统的数据进行关联,描述其等温(VLE)行为。结果表明,所建立的模型预测值与实验参考数据吻合较好。用相对挥发性模型计算的临界性质和共沸性质的相对误差对摩尔分数不超过4.3%,对压力不超过7.5%。而采用(PR-MC-WS-NRTL)模型计算液、气摩尔分数的相对偏差分别小于2.60%和2.58%。这表明这些模型能够提供可靠的解决方案来预测和调节二元制冷剂系统的相行为。
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