LAPSE:2026.0461
Published Article

LAPSE:2026.0461
High Performance Heat Pumps Using Tailored Refrigerants
June 12, 2026
Abstract
Heat Pumps (HPs) can play a vital role in the decarbonization of heating in industry. The performance of a HP strongly depends on the refrigerant, the working fluid within the HP. In order to maximize HP performance, systematic selection of the refrigerant is key. Refrigerant choice affects the very feasibility of employing a HP to deliver heating to a process. A flexible and robust method is required to select refrigerants that are the best fit for a given heating application. A computer-aided molecular & process design (CAMPD) method is developed to design the optimal refrigerant that is tailored to process needs. The method is applied to three case studies across which the HP performance objectives and constraints, and heat source and heat sink temperatures are varied. In addition, the design of refrigerants with low (<150) global warming potentials and zero ozone depletion potentials is investigated. For all applications across all case studies, the CAMPD approach successfully identifies high-performance refrigerants including those that are known refrigerants, other known fluids and novel molecules.
Heat Pumps (HPs) can play a vital role in the decarbonization of heating in industry. The performance of a HP strongly depends on the refrigerant, the working fluid within the HP. In order to maximize HP performance, systematic selection of the refrigerant is key. Refrigerant choice affects the very feasibility of employing a HP to deliver heating to a process. A flexible and robust method is required to select refrigerants that are the best fit for a given heating application. A computer-aided molecular & process design (CAMPD) method is developed to design the optimal refrigerant that is tailored to process needs. The method is applied to three case studies across which the HP performance objectives and constraints, and heat source and heat sink temperatures are varied. In addition, the design of refrigerants with low (<150) global warming potentials and zero ozone depletion potentials is investigated. For all applications across all case studies, the CAMPD approach successfully identifies high-performance refrigerants including those that are known refrigerants, other known fluids and novel molecules.
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Keywords
decarbonization, molecular design, optimization, process design
Subject
Suggested Citation
Sandham FM, Muumbo A, Mathew K, Sinha S, Gopinath S. High Performance Heat Pumps Using Tailored Refrigerants. Systems and Control Transactions 5:2066-2073 (2026) https://doi.org/10.69997/sct.149523
Author Affiliations
Sandham FM: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
Muumbo A: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
Mathew K: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
Sinha S: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
Gopinath S: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
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Muumbo A: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
Mathew K: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
Sinha S: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
Gopinath S: University of Sheffield, School of Chemical, Materials, & Biological Engineering, Sheffield, United Kingdom
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Journal Name
Systems and Control Transactions
Volume
5
First Page
2066
Last Page
2073
Year
2026
Publication Date
2026-06-12
Version Comments
Original Submission
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PII: 2066-2073-236-SCT-5-2026, Publication Type: Journal Article
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LAPSE:2026.0461
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LAPSE:2026.0039
High Performance HPs Using Tailored...
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References Cited
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