1.中国科学院工程热物理研究所,北京 100190
2.广东弘展大数据有限公司,广东 东莞 523000
郭俊(2001—),男,硕士研究生,研究方向为相变材料储能,E-mail:guojun@iet.cn;
冯乐军,副研究员,研究方向为多能互补分布式能源系统集成设计与相变储能,E-mail:fenglejun@iet.cn。
收稿:2026-01-30,
修回:2026-02-27,
纸质出版:2026-03-28
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GUO Jun, ZHU Mingzhe, GAO Jiacheng, et al. Analysis of charging and discharging characteristics of an integrated phase-change cold thermal energy storage system for telecommunication base stations[J]. Energy Storage Science and Technology, 2026, 15(3): 895-905.
郭俊, 朱明哲, 高佳诚, 等. 面向通信基站的制储一体化相变蓄冷系统蓄释能特性分析[J]. 储能科学与技术, 2026, 15(3): 895-905. DOI: 10.19799/j.cnki.2095-4239.2026.0099.
GUO Jun, ZHU Mingzhe, GAO Jiacheng, et al. Analysis of charging and discharging characteristics of an integrated phase-change cold thermal energy storage system for telecommunication base stations[J]. Energy Storage Science and Technology, 2026, 15(3): 895-905. DOI: 10.19799/j.cnki.2095-4239.2026.0099.
基于通信基站冷却系统在室外环境与冷负荷波动下的冷量调节需求,本工作搭建高效制储一体化相变蓄冷实验装置,通过实验获得相变材料(phase change material
PCM)蓄冷板蓄冷量与蓄释能特性。结果显示,纯水蓄冷工况在15~4℃、5 m
3
/h条件下,实验蓄冷量与理论值偏差3.81%,往返效率83%~86%,验证了装置测量的可靠性。PCM板工况下,流量5 m
3
/h实现了27.2℃到4.03℃蓄冷,蓄冷量55025.5 kJ,对应释冷量42184.5 kJ。当流量由4 m
3
/h提升至5 m
3
/h时,蓄冷功率提升38.3%,达到相同蓄冷量所需时间缩短4.7 h。15~4℃条件下,纯水体积218.72 L、PCM体积237.6 L时,PCM相变蓄冷量29943.3 kJ为纯水蓄冷的3倍,PCM相变蓄冷单位体积储能密度为126.03 kJ/L,可达纯水蓄冷单位体积储能密度的2.74倍。本研究为通信基站场景下板式PCM潜热蓄冷方案提供了设计参考与数据支撑,为通信基站实现削峰降载提供实验依据,推动该技术工程应用。
To meet the cooling-capacity regulation demand of telecommunication base-station cooling systems under outdoor environmental variations and fluctuating cooling loads
this study developed a high-efficiency integrated cooling-storage phase change cold thermal energy storage (CTES) experimental rig and experimentally characterized the cold storage capacity and charging/discharging behaviors of plate-type phase change material (PCM) modules. The results show that for pure-water storage from 15℃ to 4℃ at 5 m
3
/h
the measured stored cooling capacity was 21781 kJ
deviating by 3.81% from the theoretical value of 20981.6 kJ
with a round-trip efficiency of 83%—86%
confirming the reliability of the measurements. In the PCM-plate mode at 5 m
3
/h
cooling from 27.2℃ to 4.03℃ achieved a cumulative charging capacity of 55025.5 kJ and a corresponding discharging capacity of 42184.5 kJ; the peak charging power reached 4.75 kW and decayed over time. Increasing the flow rate from 4 to 5 m
3
/h enhanced the charging power by 38.3% and shortened the time required to reach the same stored cooling capacity by 4.7 h. Under identical operating conditions (15℃ to 4℃)
the system-level cold storage capacity increased from 20000 kJ (pure water) to 40000 kJ with PCM integration; for a water volume of 218.72 L and a PCM volume of 237.6 L
the PCM latent cooling capacity was 29943.3 kJ
corresponding to a volumetric energy storage density of 126.03 kJ/L
compared with 45.98 kJ/L for pure-water sensible storage
indicating that the PCM contribution reaches 2.74 times that of pure-water cold storage. These results provide design-relevant data and experimental evidence for plate-type PCM latent CTES in telecommunication base-station
applications
supporting peak shaving and load leveling and facilitating engineering deployment.
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