用Peng-Robinson状态方程预测饱和液态和不饱和气态氯氟烃及烃混合物的粘度

IF 1.3 4区 工程技术 Q3 CHEMISTRY, ORGANIC
Yashar Tahmasbi, Mojtaba Saei Moghaddam, Mohammad Fani Kheshti
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引用次数: 0

摘要

为了确定液态和气态氯氟烃的粘度,已经开发了各种实验方法和图表,但它们的用途有限。本研究采用基于Peng-Robinson三次状态方程的可靠模型和烃类混合物的混合规则,确定了氯氟烃和烃类混合物的粘度。最后,使用Fminsearch算法优化531个数据点的结果,其中纯氟氯化碳451个点(饱和液态氟氯化碳167个点,不饱和气态氟氯化碳284个点(R13、R32),二元混合物80个点。在本研究中,使用了在宽压力(3237-5805 kPa)和温度(301.84-487.40 K)范围内获得的大型氟氯化碳数据集。结果表明,实验数据与模型结果具有较好的一致性。对于本研究考虑的17种纯氯氟烃,计算的平均绝对误差为1.92%,4种双组分烃混合物的平均相对误差为5.28%。R13和R32的预测黏度与实验黏度的差异主要为0.1。一般来说,所分析的模型是准确的,并且不需要代表其主要优势的体积密度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Prediction of the Viscosity of Saturated Liquid and Unsaturated Gaseous Chlorofluorocarbons as Well as Hydrocarbon Mixtures Using the Peng–Robinson Equation of State

Prediction of the Viscosity of Saturated Liquid and Unsaturated Gaseous Chlorofluorocarbons as Well as Hydrocarbon Mixtures Using the Peng–Robinson Equation of State

In order to determine the viscosity of liquid and gaseous chlorofluorocarbons, various experimental approaches and graphs have been developed, but they had a limited use. In this study, the viscosity of chlorofluorocarbons and hydrocarbon mixtures has been determined by applying a reliable model based n the Peng–Robinson cubic equation of state and the mixing rule for hydrocarbon mixtures. Finally, the Fminsearch algorithm has been used to optimize the result of 531 data points including 451 points for pure chlorofluorocarbons (167 points for saturated liquid chlorofluorocarbons, 284 points for unsaturated gaseous chlorofluorocarbons (R13, R32) and 80 points for binary mixtures. In this study, a large chlorofluorocarbon data set obtained for a wide pressure (3237–5805 kPa), and temperature (301.84–487.40 K) ranges has been used. The results show a similarity between the experimental data and the model results. For 17 pure chlorofluorocarbons considered in this study, the calculated average absolute deviation is 1.92%, and the average relative error for four two-component hydrocarbon mixtures is 5.28%. A difference between the predicted and the experimental viscosity for R13 and R32 was mainly 0.1. In general, the analyzed model is accurate and does not require the bulk density that represents its main advantage.

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来源期刊
Petroleum Chemistry
Petroleum Chemistry 工程技术-工程:化工
CiteScore
2.50
自引率
21.40%
发文量
102
审稿时长
6-12 weeks
期刊介绍: Petroleum Chemistry (Neftekhimiya), founded in 1961, offers original papers on and reviews of theoretical and experimental studies concerned with current problems of petroleum chemistry and processing such as chemical composition of crude oils and natural gas liquids; petroleum refining (cracking, hydrocracking, and catalytic reforming); catalysts for petrochemical processes (hydrogenation, isomerization, oxidation, hydroformylation, etc.); activation and catalytic transformation of hydrocarbons and other components of petroleum, natural gas, and other complex organic mixtures; new petrochemicals including lubricants and additives; environmental problems; and information on scientific meetings relevant to these areas. Petroleum Chemistry publishes articles on these topics from members of the scientific community of the former Soviet Union.
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