LAPSE:2025.0595v1
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LAPSE:2025.0595v1
Screening and Optimal Design of CCU Processes using Superstructure Optimization
Flemming Holtorf, Luise Bering, Andreas Vellguth, Daniel Felder, Pascal Padberg
September 9, 2025
Abstract
Algal biomass production, mineralization, and chemical conversion as promising carbon dioxide utilization processes are compared with regard to economic as well as environmental factors. The production of the chemicals methanol, dimethyl ether, and dimethyl carbonate is selected as the most viable alternative among all options. The integrated production of the proposed chemicals is evaluated for a wide range of trade-offs between economic potential and environmental impact by applying multi-objective superstructure optimization. The results indicate that direct hydrogenation of CO2 to methanol with subsequent dehydration to dimethyl ether is on the verge of profitability (including capture cost) while achieving a positive net CO2 consumption of ca. 68% of supplied CO2 when direct and indirect emissions are accounted for; and 85% when only direct emissions are considered.
Keywords
Carbon Capture, Dimethyl Ether, Methanol, Optimization, Screening, Superstructure Optimization
Suggested Citation
Holtorf F, Bering L, Vellguth A, Felder D, Padberg P. Screening and Optimal Design of CCU Processes using Superstructure Optimization. (2025). LAPSE:2025.0595v1
Author Affiliations
Holtorf F: Aachener Verfahrenstechnik - Process Systems Engineering, RWTH Aachen University, Aachen, Germany
Bering L: Aachener Verfahrenstechnik - Process Systems Engineering, RWTH Aachen University, Aachen, Germany
Vellguth A: Aachener Verfahrenstechnik - Process Systems Engineering, RWTH Aachen University, Aachen, Germany
Felder D: Aachener Verfahrenstechnik - Process Systems Engineering, RWTH Aachen University, Aachen, Germany
Padberg P: Aachener Verfahrenstechnik - Process Systems Engineering, RWTH Aachen University, Aachen, Germany
Year
2017
Publication Date
2017-01-27
Issuing Institution
RWTH Aachen University
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Winner of the EURECHA Process Design Contest 2017
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Sep 9, 2025
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Sep 9, 2025
 
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Thomas A. Adams II