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Numerical study on the heat transfer, extraction, and storage in a deep-buried pipe

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  • Li, Chao
  • Guan, Yanling
  • Jiang, Chao
  • Deng, Shunxi
  • Lu, Zhenzhen

Abstract

Aiming at the thermal attenuation problem of ground temperature field in unidirectional heat extraction and supply in buildings of deep-buried geothermal energy, we propose supplementing heat to the ground using some heat source such as solar energy that is stored during the non-heating period, thus enabling long-term operation of a buried pipe system. With the study conducted on a buried U-bend pipe project with a depth of 2505 m, a three-dimensional (3D) full-scale model was established based on the numerical modeling method which obtained by the author’s research team in the early stage. The heat extracted from the buried pipe or the heat storage capacity of ground for a constant inlet water temperature and given initial ground temperature field was analyzed and predicted. Meanwhile, the heat storage capacity after heat was taken from the buried pipe was calculated and analyzed. Finally, heat flux through the wall of the buried pipe was analyzed, and heat transfer to ground at different buried depths during the heat storage period was discussed.

Suggested Citation

  • Li, Chao & Guan, Yanling & Jiang, Chao & Deng, Shunxi & Lu, Zhenzhen, 2020. "Numerical study on the heat transfer, extraction, and storage in a deep-buried pipe," Renewable Energy, Elsevier, vol. 152(C), pages 1055-1066.
  • Handle: RePEc:eee:renene:v:152:y:2020:i:c:p:1055-1066
    DOI: 10.1016/j.renene.2020.01.124
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    References listed on IDEAS

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    Cited by:

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    2. Xiaoyan Zhang & Muyan Xu & Li Liu & Lang Liu & Mei Wang & Haiwei Ji & KI-IL Song, 2020. "The Concept, Technical System and Heat Transfer Analysis on Phase-Change Heat Storage Backfill for Exploitation of Geothermal Energy," Energies, MDPI, vol. 13(18), pages 1-22, September.
    3. Sihan Zhou & Lijie Zhu & Runan Wan & Tao Zhang & Yongzheng Zhang & Yi Zhan & Fang Wang & Linfeng Zhang & Tian You, 2023. "An Overview of Sandbox Experiment on Ground Heat Exchangers," Sustainability, MDPI, vol. 15(14), pages 1-39, July.
    4. Chen, Chaofan & Cai, Wanlong & Naumov, Dmitri & Tu, Kun & Zhou, Hongwei & Zhang, Yuping & Kolditz, Olaf & Shao, Haibing, 2021. "Numerical investigation on the capacity and efficiency of a deep enhanced U-tube borehole heat exchanger system for building heating," Renewable Energy, Elsevier, vol. 169(C), pages 557-572.

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