LAPSE:2026.0237v1
Published Article

LAPSE:2026.0237v1
Multi-Scale Design for Clean Energy Systems: Industrial Electrification and Flexible Operation of Ammonia Synthesis
June 12, 2026
Abstract
Flexible, electrified systems for chemical and energy production are promising alternatives to traditional, hydrocarbon-based processes. Flexible systems have the potential to reduce costs and emissions, but the interconnection between design and operation makes these systems challenging to implement. We use an operation-informed design framework to model a flexible, electrified ammonia synthesis system. We examine the levelized cost and carbon intensity of ammonia in response to different grid emissions (0-420 kg/MWh). We find levelized costs from 700-1200 $/ton-NH3 and observe non-monotonicity in carbon-intensity with respect to grid emissions. We rationalize this trend as a design transition from large, grid-reliant systems to smaller, flexible designs that are grid independent. We then study how synergies in demand and unit-operation flexibility can lower both the price and carbon-intensity of ammonia production. We find that for seasonal, or yearly demand (rather than hourly), a fully flexible Haber Bosch process can achieve 20% lower costs and reduce its carbon-intensity by ~70-100%. We highlight major challenge in decarbonization, but also the importance flexibility plays in reducing carbon-intensity. Together, these analyses demonstrate that flexibility helps electrified industrial systems achieve financial and environmental goals.
Flexible, electrified systems for chemical and energy production are promising alternatives to traditional, hydrocarbon-based processes. Flexible systems have the potential to reduce costs and emissions, but the interconnection between design and operation makes these systems challenging to implement. We use an operation-informed design framework to model a flexible, electrified ammonia synthesis system. We examine the levelized cost and carbon intensity of ammonia in response to different grid emissions (0-420 kg/MWh). We find levelized costs from 700-1200 $/ton-NH3 and observe non-monotonicity in carbon-intensity with respect to grid emissions. We rationalize this trend as a design transition from large, grid-reliant systems to smaller, flexible designs that are grid independent. We then study how synergies in demand and unit-operation flexibility can lower both the price and carbon-intensity of ammonia production. We find that for seasonal, or yearly demand (rather than hourly), a fully flexible Haber Bosch process can achieve 20% lower costs and reduce its carbon-intensity by ~70-100%. We highlight major challenge in decarbonization, but also the importance flexibility plays in reducing carbon-intensity. Together, these analyses demonstrate that flexibility helps electrified industrial systems achieve financial and environmental goals.
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Kalamaris NN, Maravelias CT. Multi-Scale Design for Clean Energy Systems: Industrial Electrification and Flexible Operation of Ammonia Synthesis. Systems and Control Transactions 5:282-288 (2026) https://doi.org/10.69997/sct.120107
Author Affiliations
Kalamaris NN: Princeton University, Department of Chemical Engineering, Princeton, New Jersey, United States of America [ORCID]
Maravelias CT: Princeton University, Department of Chemical Engineering, Princeton, New Jersey, United States of America. Andlinger Center for Energy and the Environment, Princeton, New Jersey, United States of America [ORCID]
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Maravelias CT: Princeton University, Department of Chemical Engineering, Princeton, New Jersey, United States of America. Andlinger Center for Energy and the Environment, Princeton, New Jersey, United States of America [ORCID]
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Journal Name
Systems and Control Transactions
Volume
5
First Page
282
Last Page
288
Year
2026
Publication Date
2026-06-12
Version Comments
Original Submission
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PII: 0282-0288-102-SCT-5-2026, Publication Type: Journal Article
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LAPSE:2026.0237v1
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LAPSE:2026.0018
Supplemental Information: Multi-Sca...
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https://doi.org/10.69997/sct.120107
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Jun 12, 2026
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References Cited
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