TY - JOUR
T1 - Thermal performance of a plate-type latent heat thermal energy storage heat exchanger - An experimental investigation and simulation study
AU - Li, Jie
AU - Zhang, Yuan
AU - Peng, Zian
AU - Zhang, Xiaofeng
AU - Zhai, John
AU - Luo, Yongqiang
AU - Liu, Baochang
AU - Sun, Xiaoqin
AU - Al-Saadi, Saleh Nasser
N1 - Funding Information:
This work is supported by the National Natural Science Foundation of China ( 52078053 , 51608051 ), the Science and Technology Department of Hunan ( 2020GK4057 ), the Changsha City Fund for Distinguished and Innovative Young Scholars ( kq2106036 ), the Hunan Provincial Science and Technology Department ( 2020WK2012 , 2021JJ40584 ), the Education Department of Hunan Province ( 19C0073 ), the Postgraduate Scientific Research Innovation Project of Hunan Province ( CX20220924 ) and the Chenzhou Municipal Science and Technology Bureau ( 2021SFQ01 , 2022SFQ27 ).
Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2023/8/15
Y1 - 2023/8/15
N2 - Heat storage is key to reducing the mismatch between energy supply and demand. The performance of thermal energy storage heat exchangers is determined by the exchanger structure and the heat transfer fluid (HTF) parameters. In this paper, the heat exchanger structure and HTF parameters of a plate-type latent heat thermal energy storage (LHTES) heat exchanger were investigated through experiments and simulations. From the experimental tests, it was observed that thermocouples accelerated the melting process of paraffin by 6 % on average for a single LHTES plate. The LHTES plate with aspect ratio of 3:1 was the optimal structure with the shortest melting time. To figure out the optimal thermal performance of the LHTES heat exchanger, a mathematical model was developed by FLUENT and verified against the experimental data. The influence of LHTES plate thickness as well as the HTF temperature and velocity was numerically studied. A performance factor was proposed to evaluate the thermal performance for the melting process of plate-type LHTES heat exchangers. Simulation analysis shows that the highest performance factor is realized when the LHTES plate thickness is 15 mm, independent to the HTF temperature and velocity. When the HTF velocity is small, it is critical to focus on the design of plate thickness of the heat exchangers rather than increasing the HTF temperature.
AB - Heat storage is key to reducing the mismatch between energy supply and demand. The performance of thermal energy storage heat exchangers is determined by the exchanger structure and the heat transfer fluid (HTF) parameters. In this paper, the heat exchanger structure and HTF parameters of a plate-type latent heat thermal energy storage (LHTES) heat exchanger were investigated through experiments and simulations. From the experimental tests, it was observed that thermocouples accelerated the melting process of paraffin by 6 % on average for a single LHTES plate. The LHTES plate with aspect ratio of 3:1 was the optimal structure with the shortest melting time. To figure out the optimal thermal performance of the LHTES heat exchanger, a mathematical model was developed by FLUENT and verified against the experimental data. The influence of LHTES plate thickness as well as the HTF temperature and velocity was numerically studied. A performance factor was proposed to evaluate the thermal performance for the melting process of plate-type LHTES heat exchangers. Simulation analysis shows that the highest performance factor is realized when the LHTES plate thickness is 15 mm, independent to the HTF temperature and velocity. When the HTF velocity is small, it is critical to focus on the design of plate thickness of the heat exchangers rather than increasing the HTF temperature.
KW - Aspect ratio
KW - Energy storage efficiency
KW - LHTES heat exchanger
KW - Performance factor
KW - Plate thickness
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U2 - 10.1016/j.est.2023.107295
DO - 10.1016/j.est.2023.107295
M3 - Article
AN - SCOPUS:85152228654
SN - 2352-152X
VL - 65
JO - Journal of Energy Storage
JF - Journal of Energy Storage
M1 - 107295
ER -