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Extractive distillation of tetrahydrofuran–ethyl acetate–water mixture in schemes including columns with side sections and side draws

https://doi.org/10.32362/2410-6593-2025-20-2-95-106

EDN: XRBSSO

Abstract

Objectives. The work set out to evaluate the energy efficiency of using schemes including columns with side sections and side draws in the extractive distillation of tetrahydrofuran–ethyl acetate–water mixture with dimethyl sulfoxide as an entrainer.

Methods. The main research method consisted of a computational experiment with the Aspen Plus v. 12 software package. The local composition UNIQUAC equation model was used for describing vapor–liquid equilibrium. Parametric optimization of initial scheme and schemes, including columns with side sections and side draws, was carried out according to the criterion of energy consumptions in distillation columns reboilers.

Results. Two variants ofschemes including partially thermally coupled distillation columns and two variants ofschemes including columns with side draws were synthesized on the basis of the conventional scheme of double extractive distillation consisting of two-withdrawal columns using the graph method. The optimal operating parameters of the conventional scheme and all schemes obtained on its basis were determined. The schemes, including columns with side draw, were modeled in two variants, namely, in the vapor phase with side draw, and in the liquid phase. The energy efficiency of the proposed schemes was evaluated in comparison with the conventional scheme.

Conclusions. The phase state of the side draw is shown to have little effect on the total energy consumption in column reboilers, the amount of liquid-phase side draw being 1.4–5.2 times greater than that of vapor-phase draw. Among the schemes including complex columns with a side section, the maximum reduction of energy consumption by 5.9% in relation to the scheme of two-withdrawal columns is provided by the scheme according to which the thermal coupling between the second extractive column and the regeneration column of the entrainer is realized. Thermal coupling of extractive columns provides a significantly lower energy saving (1.36%). Among the schemes including complex columns with side draw, the greatest energy efficiency (5.9%) is characterized by the scheme in which the draw in the vapor phase is taken from the second extractive column to the regeneration column.

About the Authors

D. G. Rudakov
MIREA – Russian Technological University (M.V. Lomonosov Institute of Fine Chemical Technologies)
Russian Federation

Danila G. Rudakov, Cand. Sci. (Eng.), Associate Professor, Department of Chemistry and Technology of Basic Organic Synthesis

ScopusAuthorID 37018548000, ResearcherID M-5241-2014

78, Vernadskogo pr., Moscow, 119454


Competing Interests:

The authors declare no conflicts of interest



S. M. Kharlamov
MIREA – Russian Technological University (M.V. Lomonosov Institute of Fine Chemical Technologies)
Russian Federation

Sergey M. Kharlamov, Student

78, Vernadskogo pr., Moscow, 119454


Competing Interests:

The authors declare no conflicts of interest



P. S. Klauzner
MIREA – Russian Technological University (M.V. Lomonosov Institute of Fine Chemical Technologies)
Russian Federation

Pavel S. Klauzner, Cand. Sci. (Eng.), Assistant, Department of Chemistry and Technology of Basic Organic Synthesis

ResearcherID AAJ-7842-2021

78, Vernadskogo pr., Moscow, 119454


Competing Interests:

The authors declare no conflicts of interest



E. A. Anokhina
MIREA – Russian Technological University (M.V. Lomonosov Institute of Fine Chemical Technologies)
Russian Federation

Elena A. Anokhina, Dr. Sci. (Eng.), Professor, Department of Chemistry and Technology of Basic Organic Synthesis

Scopus Author ID 6701718055, ResearcherID E-5022-2016

78, Vernadskogo pr., Moscow, 119454


Competing Interests:

The authors declare no conflicts of interest



A. V. Timoshenko
MIREA – Russian Technological University (M.V. Lomonosov Institute of Fine Chemical Technologies)
Russian Federation

Andrey V. Timoshenko, Dr.Sci. (Eng.), Professor, Department of Chemistry and Technology of Basic Organic Synthesis

Scopus Author ID 56576076700, ResearcherID Y-8709-2018

78, Vernadskogo pr., Moscow, 119454


Competing Interests:

The authors declare no conflicts of interest



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Supplementary files

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Indexing metadata ▾
  • The energy efficiency of using schemes including columns with side sections and side draws in the extractive distillation of tetrahydrofuran–ethyl acetate–water mixture with dimethyl sulfoxide as an entrainer was evaluated.
  • Two variants of schemes including partially thermally coupled distillation columns and two variants of schemes including columns with side draws were synthesized on the basis of the conventional scheme of double extractive distillation consisting of two-withdrawal columns using the graph method.
  • The phase state of the side draw is shown to have little effect on the total energy consumption in column reboilers, the amount of liquid-phase side draw being 1.4–5.2 times greater than that of vapor-phase draw.

Review

For citations:


Rudakov D.G., Kharlamov S.M., Klauzner P.S., Anokhina E.A., Timoshenko A.V. Extractive distillation of tetrahydrofuran–ethyl acetate–water mixture in schemes including columns with side sections and side draws. Fine Chemical Technologies. 2025;20(2):95-106. https://doi.org/10.32362/2410-6593-2025-20-2-95-106. EDN: XRBSSO

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