2000Industrial & Engineering Chemistry ResearchRequires access

Prediction of Liquid−Liquid−Vapor Equilibria in Asymmetric Hydrocarbon Mixtures

Jacek Gregorowicz, Theo W. de Loos

Open publisher page 12 citations

Abstract

Three-phase liquid−liquid−vapor (LLV) equilibria in asymmetric hydrocarbon mixtures were calculated with the Peng−Robinson (PR) and statistical associating fluid theory (SAFT) equations of state. For the Peng−Robinson equation, two types of mixing rules, one-fluid mixing rules and Wong−Sandler mixing rules, were used. The SAFT equation was coupled with the van der Waals one-fluid mixing rules. Calculations were performed for binary and ternary mixtures composed of short- and long-chain hydrocarbons. The results of the calculations were compared with experimental data. On the basis of the obtained results, the influence on the LLV equilibria of the pure-component properties of the low volatile component, the mixing rules, the binary interaction parameter, and the equation of state itself is discussed.

About this research paper

What this paper is about

Three-phase liquid−liquid−vapor (LLV) equilibria in asymmetric hydrocarbon mixtures were calculated with the Peng−Robinson (PR) and statistical associating fluid theory (SAFT) equations of state. For the Peng−Robinson equation, two types of mixing rules, one-fluid mixing rules and Wong−Sandler mixing rules, were used. The SAFT equation was coupled with the van der Waals one-fluid mixing rules. Calculations were performed for binary and ternary mixtures composed of short- and long-chain hydrocarbons. The results of the calculations were compared with experimental data. On the basis of the obtained results, the influence on the LLV equilibria of the pure-component properties of the low volatile component, the mixing rules, the binary interaction parameter, and the equation of state itself is discussed.

Why it matters

OpenAlex reports 12 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Three-phase liquid−liquid−vapor (LLV) equilibria in asymmetric hydrocarbon mixtures were calculated with the Peng−Robinson (PR) and statistical associating fluid theory (SAFT) equations of state. For the Peng−Robinson equation, two types of mixing rules, one-fluid mixing rules and Wong−Sandler mixing rules, were used. The SAFT equation was coupled with the van der Waals one-fluid mixing rules. Calculations were performed for binary and ternary mixtures composed of short- and long-chain hydrocarbons. The results of the calculations were compared with experimental data. On the basis of the obtained results, the influence on the LLV equilibria of the pure-component properties of the low volatile component, the mixing rules, the binary interaction parameter, and the equation of state itself is discussed.

Key concepts: Thermodynamics, Mixing (physics), Equation of state, Ternary operation, Hydrocarbon mixtures, van der Waals force, Chemistry, Binary number

Related papers

Back to paper searchBrowse research topicsOriginal source
Prediction of Liquid−Liquid−Vapor Equilibria in Asymmetric Hydrocarbon Mixtures — Research Paper | ScholarLens