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Investigation on the Performance and Assessment of Cylindrical Latent Heat Storage Units Within Backfill Mines Followed a Similar Experimental Methodology

Bo Zhang (), Chenjie Hou, Chao Huan, Yujiao Zhao and Xiaoyan Zhang
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Bo Zhang: College of Energy Engineering, Xi’an University of Science and Technology, Xi’an 710054, China
Chenjie Hou: College of Energy Engineering, Xi’an University of Science and Technology, Xi’an 710054, China
Chao Huan: College of Energy Engineering, Xi’an University of Science and Technology, Xi’an 710054, China
Yujiao Zhao: College of Energy Engineering, Xi’an University of Science and Technology, Xi’an 710054, China
Xiaoyan Zhang: College of Energy Engineering, Xi’an University of Science and Technology, Xi’an 710054, China

Energies, 2025, vol. 18, issue 5, 1-27

Abstract: The conversion and storage of renewable energy into thermal energy is an important part of the low carbon economy. The goaf of a deep mine offers the possibility of large-scale thermal energy storage due to its sufficient underground space. Since the repositories are built inside the goaf backfill and there are few studies on their heat storage capacity and effectiveness, this paper builds an experimental platform based on the similarity theory and selects the geometric similarity ratio of 1:15 to study the phase change heat storage performance of the backfill mine heat storage. Under the typical operating conditions, the temperature distribution of the PCM inside the cylindrical storage unit was analyzed. At the end of heat storage, the temperature distribution of the PCM was 0.93–0.98, but at the end of heat release, the temperature distribution of the PCM was not uniform. At the same time, the heat is reasonably corrected, so that the thermal energy charging effectiveness is increased to 0.98, and the total effectiveness of thermal energy charge and discharge remains 0.87. The parameters of the storage unit are analyzed in detail by changing the water temperature, the flow velocity and the ratio of heat storage and release time of the circulating medium. The experimental results show that when the heat release water temperature is constant and only the heat storage water temperature is changed, the higher the water temperature, the higher the total effectiveness of thermal energy charge and discharge. On the contrary, when the heat storage water temperature is constant and the heat release water temperature is reduced to 14 °C, the total effectiveness of the heat release is increased by 7.5%. When the flow state is in transition, the total effectiveness decreases. The longer the heat storage/release time, the smaller the TSTD ave inside the PCM and the more uniform the temperature distribution. By restoring the experimental data to the engineering prototype, the repositories installed in the goaf were able to store and extract 422.88 GJ and 375.97 GJ of heat, respectively. Finally, the environmental assessment of the C-LHSU showed that the carbon emissions per unit heating area of the CFB, GWHF and GHF were reduced by 88.1%, 84.2% and 83.0%, respectively. The experimental results show that the cylindrical phase change heat reservoir has higher heat transfer energy efficiency, which provides a theoretical basis and engineering reference for efficient heat storage and utilization in deep mine goafs.

Keywords: energy storage; similarity theory; cylindrical heat storage units; engineering prototype; ecological assessment (search for similar items in EconPapers)
JEL-codes: Q Q0 Q4 Q40 Q41 Q42 Q43 Q47 Q48 Q49 (search for similar items in EconPapers)
Date: 2025
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