IDEAS home Printed from https://ideas.repec.org/a/eee/renene/v243y2025ics0960148125002812.html
   My bibliography  Save this article

Thermal performance and influencing range of underground inclined medium-deep geothermal heat exchangers

Author

Listed:
  • Jia, Guosheng
  • Ma, Zhendi
  • Zhang, Zhibin
  • Hao, Jianke
  • Cao, Ying
  • Ma, Yulian
  • Jin, Liwen

Abstract

Geothermal energy is one of the most competitive renewable energies. For large-scale projects, multiple medium-deep geothermal heat exchangers (MGHEs) with depths of 2000–3000 m are often used to satisfy the building heating. Limited by occupied area, thermal influencing radius is an important parameter reflecting the MGHE influencing range in surrounding strata. This paper presented a novel investigation on the impact of inclination on MGHE thermal performance and influencing range. A finite volume method (FVM) based algorithm coded by MATLAB was established and validated by 28 days’ project operating data, before it was used to study the influencing range affected by the depth of kick-off point (H), angle of inclination (α) and working fluid flow rate. It was concluded that for a conventional vertical MGHE with a 2500 m burial depth, the maximum influencing radius increases from 8.06 m to 31.84 m after 10 years of operation. For the inclined MGHE with the same length, increasing α decreases the maximum thermal influencing radius position (TIRP). The relationships among heat extraction rate, TIRP and MGHE parameters were established through non-linear regression. When α increases from 0° to 10°, TIRP can be reduced to a minimum value of 5.3 m when H = 500 m. A smaller H conduces to reducing TIRP without affecting the thermal performance. The proposed methods and results will be conducive to the MGHE array design and efficient use of geothermal energy.

Suggested Citation

  • Jia, Guosheng & Ma, Zhendi & Zhang, Zhibin & Hao, Jianke & Cao, Ying & Ma, Yulian & Jin, Liwen, 2025. "Thermal performance and influencing range of underground inclined medium-deep geothermal heat exchangers," Renewable Energy, Elsevier, vol. 243(C).
  • Handle: RePEc:eee:renene:v:243:y:2025:i:c:s0960148125002812
    DOI: 10.1016/j.renene.2025.122619
    as

    Download full text from publisher

    File URL: http://www.sciencedirect.com/science/article/pii/S0960148125002812
    Download Restriction: Full text for ScienceDirect subscribers only

    File URL: https://libkey.io/10.1016/j.renene.2025.122619?utm_source=ideas
    LibKey link: if access is restricted and if your library uses this service, LibKey will redirect you to where you can use your library subscription to access this item
    ---><---

    As the access to this document is restricted, you may want to search for a different version of it.

    References listed on IDEAS

    as
    1. Huang, Shuai & Li, Jiqin & Zhu, Ke & Dong, Jiankai & Jiang, Yiqiang, 2024. "Numerical investigation on the long-term heating performance and sustainability analysis of medium-deep U-type borehole heat exchanger system," Energy, Elsevier, vol. 289(C).
    2. Li, Jianwei & Bao, Lingling & Niu, Guoqing & Miao, Zhuang & Guo, Xiaokai & Wang, Weilian, 2024. "Research on renewable energy coupling system based on medium-deep ground temperature attenuation," Applied Energy, Elsevier, vol. 353(PB).
    3. huajun, Wang & Yishuo, Xu & Yukun, Sun & Sumin, Zhao, 2022. "Heat extraction by deep coaxial borehole heat exchanger for clean space heating near Beijing, China: Field test, model comparison and operation pattern evaluation," Renewable Energy, Elsevier, vol. 199(C), pages 803-815.
    4. Ma, Z.D. & Jia, G.S. & Cui, X. & Xia, Z.H. & Zhang, Y.P. & Jin, L.W., 2020. "Analysis on variations of ground temperature field and thermal radius caused by ground heat exchanger crossing an aquifer layer," Applied Energy, Elsevier, vol. 276(C).
    5. Zhang, Yuanyuan & Ye, Cantao & Kong, Yanlong & Gong, Yulie & Zhang, Dongdong & Yao, Yecheng, 2023. "Thermal attenuation and heat supplementary analysis of medium-deep coaxial borehole system-based on a practical project," Energy, Elsevier, vol. 270(C).
    6. Li, Chao & Guan, Yanling & Liu, Jianhong & Jiang, Chao & Yang, Ruitao & Hou, Xueming, 2020. "Heat transfer performance of a deep ground heat exchanger for building heating in long-term service," Renewable Energy, Elsevier, vol. 166(C), pages 20-34.
    7. Huang, Shuai & Lin, Duotong & Dong, Jiankai & Li, Ji, 2025. "Effects of building load characteristics on heating performance of the medium-deep U-type borehole heat exchanger coupled heat pumps: A coupled dynamic simulation," Applied Energy, Elsevier, vol. 377(PA).
    8. Gascuel, Violaine & Rivard, Christine & Raymond, Jasmin, 2024. "Deep geothermal doublets versus deep borehole heat exchangers: A comparative study for cold sedimentary basins," Applied Energy, Elsevier, vol. 361(C).
    9. Alaie, Omid & Maddahian, Reza & Heidarinejad, Ghassem, 2021. "Investigation of thermal interaction between shallow boreholes in a GSHE using the FLS-STRCM model," Renewable Energy, Elsevier, vol. 175(C), pages 1137-1150.
    10. Jia, G.S. & Ma, Z.D. & Xia, Z.H. & Wang, J.W. & Zhang, Y.P. & Jin, L.W., 2021. "Investigation of the horizontally-butted borehole heat exchanger based on a semi-analytical method considering groundwater seepage and geothermal gradient," Renewable Energy, Elsevier, vol. 171(C), pages 447-461.
    11. Jia, G.S. & Ma, Z.D. & Xia, Z.H. & Zhang, Y.P. & Xue, Y.Z. & Chai, J.C. & Jin, L.W., 2022. "A finite-volume method for full-scale simulations of coaxial borehole heat exchangers with different structural parameters, geological and operating conditions," Renewable Energy, Elsevier, vol. 182(C), pages 296-313.
    12. Cavazzuti, Marco & Bottarelli, Michele, 2023. "Performance analysis of a multi-source renewable energy system for temperature control in buildings of varied thermal transmittance and climate zone," Renewable and Sustainable Energy Reviews, Elsevier, vol. 187(C).
    13. Cai, Wanlong & Wang, Fenghao & Chen, Chaofan & Chen, Shuang & Liu, Jun & Ren, Zhanli & Shao, Haibing, 2022. "Long-term performance evaluation for deep borehole heat exchanger array under different soil thermal properties and system layouts," Energy, Elsevier, vol. 241(C).
    14. Jun Liu & Yuping Zhang & Zeyuan Wang & Cong Zhou & Boyang Liu & Fenghao Wang, 2023. "Medium Rock-Soil Temperature Distribution Characteristics at Different Time Scales and New Layout Forms in the Application of Medium-Deep Borehole Heat Exchangers," Energies, MDPI, vol. 16(19), pages 1-22, October.
    Full references (including those not matched with items on IDEAS)

    Most related items

    These are the items that most often cite the same works as this one and are cited by the same works as this one.
    1. Huang, Shuai & Lin, Duotong & Dong, Jiankai & Li, Ji, 2025. "Effects of building load characteristics on heating performance of the medium-deep U-type borehole heat exchanger coupled heat pumps: A coupled dynamic simulation," Applied Energy, Elsevier, vol. 377(PA).
    2. Matyska, Ctirad & Zábranová, Eliška, 2024. "Seasonal energy extraction and storage by deep coaxial borehole heat exchangers in a layered ground," Renewable Energy, Elsevier, vol. 237(PA).
    3. Cai, Wanlong & Wang, Fenghao & Zhang, Yuping & Jiang, Jinghua & Wang, Qiuwang & Shao, Haibing & Kolditz, Olaf & Nagel, Thomas & Chen, Chaofan, 2025. "Field test and long-term heat extraction performance evaluation of the deep U-type borehole heat exchanger system," Renewable Energy, Elsevier, vol. 240(C).
    4. Chen, Hongfei & Liu, Hongtao & Yang, Fuxin & Tan, Houzhang & Wang, Bangju, 2023. "Field measurements and numerical investigation on heat transfer characteristics and long-term performance of deep borehole heat exchangers," Renewable Energy, Elsevier, vol. 205(C), pages 1125-1136.
    5. Li, Chao & Jiang, Chao & Guan, Yanling & Chen, Hao & Yang, Ruitao & Wan, Rong & Shen, Lu, 2023. "Comparison of the experimental and numerical results of coaxial-type and U-type deep-buried pipes’ heat transfer performances," Renewable Energy, Elsevier, vol. 210(C), pages 95-106.
    6. Zhang, Sheng & Liu, Jun & Zhang, Xia & Wang, Fenghao, 2024. "Properly shortening design time scale of medium-deep borehole heat exchanger for high building heating performances with high computational efficiency," Energy, Elsevier, vol. 290(C).
    7. Ma, Yongfa & Yang, Fengtian & Zhu, Ruijie & Zhou, Xuejun & Liu, Guang & Yuan, Lijuan & Wang, Xu & Dong, Junling & Lü, Honglin & Li, Chang & Zhan, Tao & Su, Bin & Xu, Siqi, 2024. "A numerical study on the sustainability and efficiency of deep coaxial borehole heat exchanger systems in the cold region of northeast China," Renewable Energy, Elsevier, vol. 237(PA).
    8. Jia, G.S. & Ma, Z.D. & Xia, Z.H. & Zhang, Y.P. & Xue, Y.Z. & Chai, J.C. & Jin, L.W., 2022. "A finite-volume method for full-scale simulations of coaxial borehole heat exchangers with different structural parameters, geological and operating conditions," Renewable Energy, Elsevier, vol. 182(C), pages 296-313.
    9. Li, Chao & Jiang, Chao & Guan, Yanling & Chen, Kai & Wu, Jiale & Xu, Jiamin & Wang, Jiachen, 2024. "Simplified method and numerical simulation analysis of pipe-group long-term heat transfer in deep-ground heat exchangers," Energy, Elsevier, vol. 299(C).
    10. Zhendi Ma & Siyu Qin & Yuping Zhang & Wei-Hsin Chen & Guosheng Jia & Chonghua Cheng & Liwen Jin, 2023. "Effects of Boundary Conditions on Performance Prediction of Deep-Buried Ground Heat Exchangers for Geothermal Energy Utilization," Energies, MDPI, vol. 16(13), pages 1-27, June.
    11. Chen, Wen & Zhou, Chaohui & Huang, Xinyu & Luo, Hanbin & Luo, Yongqiang & Cheng, Nan & Tian, Zhiyong & Zhang, Shicong & Fan, Jianhua & Zhang, Ling, 2024. "Study on thermal radius and capacity of multiple deep borehole heat exchangers: Analytical solution, algorithm and application based on Response Factor Matrix method (RFM)," Energy, Elsevier, vol. 296(C).
    12. Wang, Meijie & Wang, Jiali, 2025. "Enhanced heat extraction for coaxial medium-deep borehole heat exchangers by adding triangular fins on the outer tube wall," Renewable Energy, Elsevier, vol. 242(C).
    13. Huang, Shuai & Li, Jiqin & Zhu, Ke & Dong, Jiankai & Jiang, Yiqiang, 2024. "Numerical investigation on the long-term heating performance and sustainability analysis of medium-deep U-type borehole heat exchanger system," Energy, Elsevier, vol. 289(C).
    14. Chen, Chaofan & Witte, Francesco & Taherdangkoo, Reza & Cai, Wanlong & Chen, Shuang & Kong, Yanlong & Shao, Haibing & Hofmann, Mathias & Nagel, Thomas, 2025. "Thermal performance response and heat load redistribution mechanism of a deep U-type borehole heat exchanger in heating systems," Applied Energy, Elsevier, vol. 382(C).
    15. Gascuel, Violaine & Rivard, Christine & Raymond, Jasmin, 2024. "Deep geothermal doublets versus deep borehole heat exchangers: A comparative study for cold sedimentary basins," Applied Energy, Elsevier, vol. 361(C).
    16. Yi, Gaowei & Zhang, Da & Zhang, Wenlong & Li, Yan & Gong, Liang, 2025. "Exploiting seafloor hydrothermal energy through optimized closed-loop heat extraction," Renewable Energy, Elsevier, vol. 242(C).
    17. Yin, Hongmei & Zayed, Mohamed E. & Li, Yang & Yang, Liming & Fan, Yifan & Wang, Ziwei & Yin, Likun & Zhao, Jun & Al-Kbodi, Basher Hassan & Rehman, Shafiqur, 2024. "Thermo-economic performance of a leaky downhole coaxial geothermal system for maximizing geothermal energy production: Numerical investigation," Renewable Energy, Elsevier, vol. 232(C).
    18. Shen, Junhao & Luo, Yongqiang & Zhou, Chaohui & Song, Yixiao & Tian, Zhiyong & Fan, Jianhua & Zhang, Ling & Liu, Aihua, 2025. "A slightly inclined deep borehole heat exchanger array behaves better than vertical installation," Renewable Energy, Elsevier, vol. 238(C).
    19. Li, Mingqi & Shi, Yan & Chen, Hongxu & Liu, Chengcheng & Li, Hongchao, 2024. "Study on the heat transfer performance of coaxial casing heat exchanger for medium and deep geothermal energy in cold regions," Renewable Energy, Elsevier, vol. 237(PB).
    20. Li, He & Wang, Pengyu & Fang, Debin, 2024. "Differentiated pricing for the retail electricity provider optimizing demand response to renewable energy fluctuations," Energy Economics, Elsevier, vol. 136(C).

    Corrections

    All material on this site has been provided by the respective publishers and authors. You can help correct errors and omissions. When requesting a correction, please mention this item's handle: RePEc:eee:renene:v:243:y:2025:i:c:s0960148125002812. See general information about how to correct material in RePEc.

    If you have authored this item and are not yet registered with RePEc, we encourage you to do it here. This allows to link your profile to this item. It also allows you to accept potential citations to this item that we are uncertain about.

    If CitEc recognized a bibliographic reference but did not link an item in RePEc to it, you can help with this form .

    If you know of missing items citing this one, you can help us creating those links by adding the relevant references in the same way as above, for each refering item. If you are a registered author of this item, you may also want to check the "citations" tab in your RePEc Author Service profile, as there may be some citations waiting for confirmation.

    For technical questions regarding this item, or to correct its authors, title, abstract, bibliographic or download information, contact: Catherine Liu (email available below). General contact details of provider: http://www.journals.elsevier.com/renewable-energy .

    Please note that corrections may take a couple of weeks to filter through the various RePEc services.

    IDEAS is a RePEc service. RePEc uses bibliographic data supplied by the respective publishers.