Exploring Exergy Performance in Tetrahydrofuran/Water and Acetone/Chloroform Separations

Author:

Mtogo Jonathan Wavomba12ORCID,Mugo Gladys Wanyaga2,Varbanov Petar Sabev3ORCID,Szanyi Agnes1,Mizsey Péter4ORCID

Affiliation:

1. Department of Chemical and Environmental Process Engineering, Budapest University of Technology and Economics, 1111 Budapest, Hungary

2. Chemical Engineering Division, Kenya Industrial Research and Development Institute, P.O. Box 30650, Nairobi 00100, Kenya

3. Sustainable Process Integration Laboratory—SPIL, NETME Centre, FME, Brno University of Technology—VUT Brno, Technická 2896/2, 616 69 Brno, Czech Republic

4. Advanced Materials and Intelligent Technologies Higher Education and Industrial Cooperation Centre, University of Miskolc, 3515 Miskolc, Hungary

Abstract

Distillation is significantly influenced by energy costs, prompting a need to explore effective strategies for reducing energy consumption. Among these, heat integration is a key approach, but evaluating its efficiency is paramount. Therefore, this study presents exergy as an energy quality indicator, analyzing irreversibility and efficiencies in tetrahydrofuran/water and acetone/chloroform distillations. Both systems have equimolar feed streams, yielding products with 99.99 mol% purity. The simulations are performed using Aspen Plus™, enabling evaluation at the column level, as a standalone process, or from a lean perspective that considers integration opportunities with other plants. The results show that, despite anticipated energy savings from heat integration, economic viability depends on pressure sensitivity. The results demonstrate that heat-integrated extractive distillation for acetone/chloroform raises utility energy consumption. Exergy calculations comparing standalone and total site integration reveal the variation in distillation efficiency with operation mode. Global exergy efficiency in both extractive and pressure-swing distillation depends on the fate of condenser duty. In heat-integrated extractive distillation, global exergy efficiency drops from 8.7% to 5.7% for tetrahydrofuran/water and 11.5% to 8.3% for acetone/chloroform. Similarly, heat-integrated pressure-swing distillation sees global exergy efficiency decrease from 34.2% to 23.7% for tetrahydrofuran/water and 9.5% to 3.6% for acetone/chloroform, underscoring the nuanced impact of heat integration, urging careful process design consideration.

Funder

Tempus Public Foundation

Hungarian Scientific Research Funds

EU LIFE program

Czech Republic Operational Programme Research and Development, Education

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

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