LAPSE:2023.28560
Published Article
LAPSE:2023.28560
Thermodynamic Analysis of a High-Temperature Latent Heat Thermal Energy Storage System
David W. MacPhee, Mustafa Erguvan
April 12, 2023
Abstract
Thermal energy storage (TES) technologies are becoming vitally important due to intermittency of renewable energy sources in solar applications. Since high energy density is an important parameter in TES systems, latent heat thermal energy storage (LHTES) system is a common way to store thermal energy. Though there are a great number of experimental studies in the field of LHTES systems, utilizing computational codes can yield relatively quick analyses with relatively small expense. In this study, a numerical investigation of a LHTES system has been studied using ANSYS FLUENT. Results are validated with experiments, using hydroquinone as a phase-change material (PCM), which is external to Therminol VP-1 as a heat transfer fluid (HTF) contained in pipes. Energy efficiency and entropy generation are investigated for different tube/pipe geometries with a constant PCM volume. HTF inlet temperature and flow rate impacts on the thermodynamic efficiencies are examined including viscous dissipation effects. Highest efficiency and lowest entropy generation cases exist when when flow rates are lowest due to low viscous heating effects. A positive relation is found between energy efficiency and volume ratio while it differs for entropy generation for higher and lower velocities. Both efficiency and entropy generation decreased with decreasing HTF inlet temperature. The novelty of this study is the analysis of the effect of volume ratio on system performance and PCM melting time which ultimately proved to be the most dominant factor among those considered herein. However, as PCM solidification and melting time is of primary importance to system designers, simply minimizing entropy generation by decreasing volume ratio in this case does not lead to a practically optimal system, merely to decrease heat transfer entropy generation. Therefore, caution should be taken when applying entropy analyses to any LHTES storage system as entropy minimization methods may not be appropriate for practicality purposes.
Keywords
Computational Fluid Dynamics, entropy, latent heat thermal energy storage, phase change material, thermodynamics
Suggested Citation
MacPhee DW, Erguvan M. Thermodynamic Analysis of a High-Temperature Latent Heat Thermal Energy Storage System. (2023). LAPSE:2023.28560
Author Affiliations
MacPhee DW: Mechanical Engineering, The University of Alabama, Tuscaloosa, AL 35401, USA
Erguvan M: Mechanical Engineering, The University of Alabama, Tuscaloosa, AL 35401, USA [ORCID]
Journal Name
Energies
Volume
13
Issue
24
Article Number
E6634
Year
2020
Publication Date
2020-12-16
ISSN
1996-1073
Version Comments
Original Submission
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PII: en13246634, Publication Type: Journal Article
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LAPSE:2023.28560
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https://doi.org/10.3390/en13246634
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