Proceedings of ESCAPE 36ISSN: 2818-4734
Volume: 5 (2026)
Table of Contents
LAPSE:2026.0371v1
Published Article
LAPSE:2026.0371v1
Municipal Solid Waste Valorization into Chemical Solvents for Industrial Symbiosis: Techno-Economic and Environmental Assessment
June 12, 2026
Abstract
Waste incineration with combined heat and power (CHP) supplies electricity and heat to cities and industrial clusters but remains a significant source of greenhouse gas emissions. This work develops an optimization-based, system-level decarbonization framework for an integrated waste-to-energy and chemical production cluster under operational, societal, and economic constraints. The framework is applied to a real-world case study including a municipal waste incineration plant, an energy utility system, and multiple chemical production units. A layered decarbonization strategy is implemented. First, energy efficiency is enhanced through waste heat valorization using heat pumps. Second, coordination between industrial actors is improved through solid waste storage management and operational alignment of heat and power supply with demand. Third, alternative feedstocks are introduced to reduce fossil-based inputs. Within the work material and heat-stream inventories are collected, and the required chemical synthesis pathways are modeled using Aspen Plus. The integrated system is optimized within the OSMOSE framework using a multi-period mixed-integer linear programming formulation that minimizes the annualized total cost while accounting for seasonal heat demand and electricity price variability. The results show that waste-heat upgrading alone enables fossil emission reductions of up to 22% while improving overall system profitability. More broadly, up to 80% of fossil-based Scope 1 and Scope 2 CO2 emissions can be reduced through energy efficiency improvements, system integration, and feedstock substitution prior to carbon capture deployment. To address the remaining hard-to-avoid emissions and enable net-negative operation, post-combustion carbon capture options are evaluated in combination with solid oxide electrolysis cells (SOEC).
Keywords
Carbon capture, Industrial symbiosis, Process integration, Waste heat, Waste valorization
Suggested Citation
Boztas O, Flórez-Orrego DA, Domingos MEGR, Maréchal F. Municipal Solid Waste Valorization into Chemical Solvents for Industrial Symbiosis: Techno-Economic and Environmental Assessment. Systems and Control Transactions 5:1328-1335 (2026) https://doi.org/10.69997/sct.122373
Author Affiliations
Boztas O: IPESE EPFL, Federal Polytechnic School of Lausanne, Rue de L'Industrie 17, Valais/Wallis, Switzerland [ORCID]
Flórez-Orrego DA: IPESE EPFL, Federal Polytechnic School of Lausanne, Rue de L'Industrie 17, Valais/Wallis, Switzerland. Faculty of Minas, National University of Colombia, Av. 80 #65 - 223 Medellín, Colombia [ORCID]
Domingos MEGR: IPESE EPFL, Federal Polytechnic School of Lausanne, Rue de L'Industrie 17, Valais/Wallis, Switzerland [ORCID]
Maréchal F: IPESE EPFL, Federal Polytechnic School of Lausanne, Rue de L'Industrie 17, Valais/Wallis, Switzerland [ORCID]
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Journal Name
Systems and Control Transactions
Volume
5
First Page
1328
Last Page
1335
Year
2026
Publication Date
2026-06-12
Version Comments
Original Submission
Other Meta
PII: 1328-1335-527-SCT-5-2026, Publication Type: Journal Article
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LAPSE:2026.0371v1
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https://doi.org/10.69997/sct.122373
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Jun 12, 2026
 
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References Cited
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