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Article

Annual Operation Optimization of Ground Source Heat Pump Systems Under Hybrid Short- and Long-Cycle Heat Exchange

1
State Key Laboratory of Deep Earth Exploration and Imaging, College of Construction Engineering, Jilin University, Chаngсhun 130026, China
2
Nanjiang Hydrogeology and Engineering Geology Team, Chongqing Bureau of Geology and Minerals Exploration, Chongqing 401121, China
3
Jilin University Chongqing Research Institute, Chongqing, 401121, China
*
Author to whom correspondence should be addressed.
Buildings 2026, 16(18), 3714; https://doi.org/10.3390/buildings16183714 (registering DOI)
Submission received: 30 July 2026 / Revised: 3 September 2026 / Accepted: 9 September 2026 / Published: 17 September 2026

Abstract

To address the soil thermal imbalance and energy performance degradation caused by long-term operation of ground source heat pump (GSHP) systems in hot-summer/cold-winter regions such as Chongqing, this study proposes a hybrid heat exchange strategy that coordinates short- and long-cycle thermal regulation. On the long-cycle scale, cooling towers are employed during spring or transitional seasons to extract ambient cold energy and store it seasonally in the soil, thereby achieving cross-seasonal cold storage and temporal redistribution of cooling capacity. On the daily scale during summer, the seasonal cold storage and cooling tower heat rejection jointly regulate the ground temperature. A dynamic simulation model of the GSHP system was established to evaluate and optimize its long-term operational performance under cooling, heating and cold storage modes. Annual simulation results show that cold storage efficiency is positively correlated with the temperature difference between the outdoor wet-bulb temperature and the soil, and that cross-seasonal cold storage exerts only a minor impact on the heating COP in spring, which decreases by merely 0.16–0.29 compared with the wet-bulb temperature-controlled GSHP (WBT-GSHP) strategy. During summer operation, cooling towers preferentially handle the cooling load when the outdoor wet-bulb temperature is low; once the cooling load increases significantly, the heat pump units are activated and the soil-stored cold energy is utilized, effectively suppressing the rise in ground temperature. Compared with the WBT-GSHP strategy, the proposed approach improves the summer cooling COP by 0.79–1.41, substantially enhancing the operational efficiency of the cooling mode while maintaining the long-term soil temperature within a predefined range. This strategy can provide a novel solution and theoretical basis for mitigating the thermal imbalance problem in GSHP systems in Chongqing and similar hot-summer/cold-winter climate zones.
Keywords: ground source heat pump; hybrid short- and long-cycle heat exchange; thermal accumulation; cooling tower; Chongqing region ground source heat pump; hybrid short- and long-cycle heat exchange; thermal accumulation; cooling tower; Chongqing region
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MDPI and ACS Style

Yu, Y.; Ye, Y.; Yang, X.; Huang, L.; Ji, X.; Luo, H.; Jia, M.; Zhao, Y.; Gao, K. Annual Operation Optimization of Ground Source Heat Pump Systems Under Hybrid Short- and Long-Cycle Heat Exchange. Buildings 2026, 16, 3714. https://doi.org/10.3390/buildings16183714

AMA Style

Yu Y, Ye Y, Yang X, Huang L, Ji X, Luo H, Jia M, Zhao Y, Gao K. Annual Operation Optimization of Ground Source Heat Pump Systems Under Hybrid Short- and Long-Cycle Heat Exchange. Buildings. 2026; 16(18):3714. https://doi.org/10.3390/buildings16183714

Chicago/Turabian Style

Yu, Yongping, Yu Ye, Xinghua Yang, Liangdong Huang, Xiaofeng Ji, Huaiyong Luo, Mengru Jia, Yan Zhao, and Ke Gao. 2026. "Annual Operation Optimization of Ground Source Heat Pump Systems Under Hybrid Short- and Long-Cycle Heat Exchange" Buildings 16, no. 18: 3714. https://doi.org/10.3390/buildings16183714

APA Style

Yu, Y., Ye, Y., Yang, X., Huang, L., Ji, X., Luo, H., Jia, M., Zhao, Y., & Gao, K. (2026). Annual Operation Optimization of Ground Source Heat Pump Systems Under Hybrid Short- and Long-Cycle Heat Exchange. Buildings, 16(18), 3714. https://doi.org/10.3390/buildings16183714

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