LAPSE:2023.11726
Published Article

LAPSE:2023.11726
Modeling of an Elastocaloric Cooling System for Determining Efficiency
February 27, 2023
Abstract
When it comes to covering the growing demand for cooling power worldwide, elastocalorics offer an environmentally friendly alternative to compressor-based cooling technology. The absence of harmful and flammable coolants makes elastocalorics suitable for energy applications such as battery cooling. Initial prototypes of elastocaloric systems, which transport heat by means of thermal conduction or convection, have already been developed. A particularly promising solution is the active elastocaloric heat pipe (AEH), which works with latent heat transfer by the evaporation and condensation of a fluid. This enables a fast and efficient heat transfer in a compression-based elastocaloric cooling system. In this publication, we present a simulation model of the AEH based on MATLAB-Simulink. The model showed very good agreement with the experimental data pertaining to the maximum temperature span and maximum cooling power. Hereby, non-measurable variables such as efficiency and heat fluxes in the cooling system are accessible, which allows the analysis of individual losses including the dissipation effects of the material, non-ideal isolation, losses in heat transfer from the elastocaloric material to the fluid, and other parasitic heat flux losses. In total, it can be shown that using this AEH-approach, an optimized system can achieve up to 67% of the material efficiency.
When it comes to covering the growing demand for cooling power worldwide, elastocalorics offer an environmentally friendly alternative to compressor-based cooling technology. The absence of harmful and flammable coolants makes elastocalorics suitable for energy applications such as battery cooling. Initial prototypes of elastocaloric systems, which transport heat by means of thermal conduction or convection, have already been developed. A particularly promising solution is the active elastocaloric heat pipe (AEH), which works with latent heat transfer by the evaporation and condensation of a fluid. This enables a fast and efficient heat transfer in a compression-based elastocaloric cooling system. In this publication, we present a simulation model of the AEH based on MATLAB-Simulink. The model showed very good agreement with the experimental data pertaining to the maximum temperature span and maximum cooling power. Hereby, non-measurable variables such as efficiency and heat fluxes in the cooling system are accessible, which allows the analysis of individual losses including the dissipation effects of the material, non-ideal isolation, losses in heat transfer from the elastocaloric material to the fluid, and other parasitic heat flux losses. In total, it can be shown that using this AEH-approach, an optimized system can achieve up to 67% of the material efficiency.
Record ID
Keywords
analytic model, efficiency, elastocaloric cooling, latent heat transfer, shape memory alloy, Simulation
Subject
Suggested Citation
Bachmann N, Schwarz D, Bach D, Schäfer-Welsen O, Koch T, Bartholomé K. Modeling of an Elastocaloric Cooling System for Determining Efficiency. (2023). LAPSE:2023.11726
Author Affiliations
Bachmann N: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany; Institute of Internal Combustion Engines IFKM, Karlsruhe Institute of Technology (KIT), 76131 Karlsruhe, Germany [ORCID]
Schwarz D: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany [ORCID]
Bach D: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany
Schäfer-Welsen O: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany [ORCID]
Koch T: Institute of Internal Combustion Engines IFKM, Karlsruhe Institute of Technology (KIT), 76131 Karlsruhe, Germany
Bartholomé K: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany [ORCID]
Schwarz D: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany [ORCID]
Bach D: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany
Schäfer-Welsen O: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany [ORCID]
Koch T: Institute of Internal Combustion Engines IFKM, Karlsruhe Institute of Technology (KIT), 76131 Karlsruhe, Germany
Bartholomé K: Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Koehler-Allee 301, 79110 Freiburg, Germany [ORCID]
Journal Name
Energies
Volume
15
Issue
14
First Page
5089
Year
2022
Publication Date
2022-07-12
ISSN
1996-1073
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Original Submission
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PII: en15145089, Publication Type: Journal Article
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LAPSE:2023.11726
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https://doi.org/10.3390/en15145089
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Feb 27, 2023
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