Research Article
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Investigation of the performance of ground-coupled heat exchanger technology for tempering air

Year 2022, Volume: 6 Issue: 2, 309 - 321, 30.06.2022
https://doi.org/10.30521/jes.1058233

Abstract

A horizontal ground heat exchanger has been applied as a simpler sustainability measure in buildings compared to its vertical counterpart, making it more suitable for residential application. A lack of contextual scientific findings within the specific construction culture has precluded its widespread application in the developing world. In this study, an experimental and simulation investigation was carried out on the thermal performance of an air-based horizontal ground-coupled heat exchanger buried 3 m below the ground. The study was performed in the tropical climate of Mauritius with a focus on space cooling. The ground temperature and air temperature inside the pipeline at several locations of the installation was measured. A CFD simulation model was developed and calibrated against the experimental data, which allowed further analyses on the influence of system parameters on performance. The study allowed to confirm the performance of the technology for application as a sustainability measure in the local construction industry and to identify practical challenge that need to be addressed. A drop in temperature of up to 5C was achieved at 2.3 m/s and 8C at 4 m/s. The latter result holds promise to achieve thermal comfort by achieving indoor air temperature of 27 C or lower when ambient air is at 33-34C during typical summer periods.

Supporting Institution

Higher Education Commission

Project Number

TEC/11/4/3/2018

Thanks

The authors wish to express their humble gratitude to the Higher Education Commission, Mauritius for funding the research work.

References

  • [1] Lund, J., Freeston, D. World-wide direct uses of geothermal energy 2000. Geothermics 2001; 30 (1): 29-68.
  • [2] Lund, J. GEOTHERMAL HEAT PUMPS - TRENDS AND COMPARISONS - Geo-Heat Center.
  • [3] Im, P, Hughes, P, Liu, X, Ridge, O. Demonstration and performance monitoring of foundation heat exchangers (FHX) in ultra-high energy efficient research Homes Field test of the foundation heat exchanger concept. In: 17th ACEEE Summer Study on Energy Efficiency in Buildings; 12-17 August 2012: Pacific Grove, CA, pp. 114-126
  • [4] Xu, H, Spitler, JD. The relative importance of moisture transfer, soil freezing and snow cover on ground temperature predictions. Renewable Energy 2014; 72: 1-11.
  • [5] Busby, J. Determination of thermal properties for horizontal ground collector loops. In: Proceedings of World Geothermal Congress 2015; 19-25 April 2015: Melbourne, Australia, pp. 19-25.
  • [6] Naylor, S, Ellett, KM, Gustin, AR. Spatiotemporal variability of ground thermal properties in glacial sediments and implications for horizontal ground heat exchanger design. Renewable Energy 2015; 81: 21-30.
  • [7] King, W, Banks, D, Findlay, J. Field determination of shallow soil thermal conductivity using a short-duration needle probe test. Quarterly Journal of Engineering Geology and Hydrogeology 2012; 45 (4): 497-504.
  • [8] Gan, G. Dynamic thermal performance of horizontal ground source heat pumps – The impact of coupled heat and moisture transfer. Energy 2018; 152: 877-887.
  • [9] Wu, Y, Gan, G, Verhoef, A, Vidale, P, Gonzalez, R. Experimental measurement and numerical simulation of horizontal-coupled slinky ground source heat exchangers. Applied Thermal Engineering 2010; 30(16): 2574-2583.
  • [10] Tiwari, G. Design of an Earth Air Heat Exchanger (EAHE) for Climatic Condition of Chennai, India. Open Environmental Sciences 2014; 8: 24-34.
  • [11] Singh, C, Kocher, G, Singh, P. A Computational Study on the Performance of Earth Air Heat Exchanger (EAHE) Using Different Duct Geometries and Material Combinations. International Journal of Computer Sciences and Engineering 2018; 6(8): 514-519.
  • [12] Mongkon, S, Thepa, S, Namprakai, P, Pratinthong, N. Cooling performance and condensation evaluation of horizontal earth tube system for the tropical greenhouse. Energy and Buildings 2013; 66: 104-111.
  • [13] Bansal, V, Misra, R, Agrawal, G. Mathur, J. Performance analysis of earth–pipe–air heat exchanger for summer cooling. Energy and Buildings 2010; 42(5): 645-648.
  • [14] Gooroochurn, M, Hossenbaccus MZ. Horizontal Ground-Coupled Heat Exchanger as a Passive Design Technique for Tropical Climates. International Journal of Advances in Mechanical and Civil Engineering (IJAMCE) 2018; 5(4): 56-62.
  • [15] Congedo, PM, Colangelo, G, Starace, G. CFD simulations of horizontal ground heat exchangers: A comparison among different configurations. Applied Thermal Engineering 2012; 33: 24-32.
  • [16] Golik, A, Zemenkov, VV, Gladenko, YD, Seroshtanov, I.V.Modeling the heat transfer processes in the pipe-soil system. In IOP Conference Series: Materials Science and Engineering 2019; 663(1): 012012.
  • [17] Gooroochurn, M, Seegobin, B, Jankee, L. A preliminary in-situ measurement and simulation of the performance of ground-coupled heat exchanger system in the tropical context of Mauritius. In: 8th Eur. Conf. Ren. Energy Sys.; 24-25 August 2020: dhepublisher, pp.637-643.
Year 2022, Volume: 6 Issue: 2, 309 - 321, 30.06.2022
https://doi.org/10.30521/jes.1058233

Abstract

Project Number

TEC/11/4/3/2018

References

  • [1] Lund, J., Freeston, D. World-wide direct uses of geothermal energy 2000. Geothermics 2001; 30 (1): 29-68.
  • [2] Lund, J. GEOTHERMAL HEAT PUMPS - TRENDS AND COMPARISONS - Geo-Heat Center.
  • [3] Im, P, Hughes, P, Liu, X, Ridge, O. Demonstration and performance monitoring of foundation heat exchangers (FHX) in ultra-high energy efficient research Homes Field test of the foundation heat exchanger concept. In: 17th ACEEE Summer Study on Energy Efficiency in Buildings; 12-17 August 2012: Pacific Grove, CA, pp. 114-126
  • [4] Xu, H, Spitler, JD. The relative importance of moisture transfer, soil freezing and snow cover on ground temperature predictions. Renewable Energy 2014; 72: 1-11.
  • [5] Busby, J. Determination of thermal properties for horizontal ground collector loops. In: Proceedings of World Geothermal Congress 2015; 19-25 April 2015: Melbourne, Australia, pp. 19-25.
  • [6] Naylor, S, Ellett, KM, Gustin, AR. Spatiotemporal variability of ground thermal properties in glacial sediments and implications for horizontal ground heat exchanger design. Renewable Energy 2015; 81: 21-30.
  • [7] King, W, Banks, D, Findlay, J. Field determination of shallow soil thermal conductivity using a short-duration needle probe test. Quarterly Journal of Engineering Geology and Hydrogeology 2012; 45 (4): 497-504.
  • [8] Gan, G. Dynamic thermal performance of horizontal ground source heat pumps – The impact of coupled heat and moisture transfer. Energy 2018; 152: 877-887.
  • [9] Wu, Y, Gan, G, Verhoef, A, Vidale, P, Gonzalez, R. Experimental measurement and numerical simulation of horizontal-coupled slinky ground source heat exchangers. Applied Thermal Engineering 2010; 30(16): 2574-2583.
  • [10] Tiwari, G. Design of an Earth Air Heat Exchanger (EAHE) for Climatic Condition of Chennai, India. Open Environmental Sciences 2014; 8: 24-34.
  • [11] Singh, C, Kocher, G, Singh, P. A Computational Study on the Performance of Earth Air Heat Exchanger (EAHE) Using Different Duct Geometries and Material Combinations. International Journal of Computer Sciences and Engineering 2018; 6(8): 514-519.
  • [12] Mongkon, S, Thepa, S, Namprakai, P, Pratinthong, N. Cooling performance and condensation evaluation of horizontal earth tube system for the tropical greenhouse. Energy and Buildings 2013; 66: 104-111.
  • [13] Bansal, V, Misra, R, Agrawal, G. Mathur, J. Performance analysis of earth–pipe–air heat exchanger for summer cooling. Energy and Buildings 2010; 42(5): 645-648.
  • [14] Gooroochurn, M, Hossenbaccus MZ. Horizontal Ground-Coupled Heat Exchanger as a Passive Design Technique for Tropical Climates. International Journal of Advances in Mechanical and Civil Engineering (IJAMCE) 2018; 5(4): 56-62.
  • [15] Congedo, PM, Colangelo, G, Starace, G. CFD simulations of horizontal ground heat exchangers: A comparison among different configurations. Applied Thermal Engineering 2012; 33: 24-32.
  • [16] Golik, A, Zemenkov, VV, Gladenko, YD, Seroshtanov, I.V.Modeling the heat transfer processes in the pipe-soil system. In IOP Conference Series: Materials Science and Engineering 2019; 663(1): 012012.
  • [17] Gooroochurn, M, Seegobin, B, Jankee, L. A preliminary in-situ measurement and simulation of the performance of ground-coupled heat exchanger system in the tropical context of Mauritius. In: 8th Eur. Conf. Ren. Energy Sys.; 24-25 August 2020: dhepublisher, pp.637-643.
There are 17 citations in total.

Details

Primary Language English
Journal Section Research Articles
Authors

Mahendra Gooroochurn 0000-0003-0734-9144

Maheshsingh Mungur This is me 0000-0002-6590-7872

Heman Shamachurn This is me 0000-0003-3441-1054

Yashwansingh Surnam This is me 0000-0002-3941-8135

Fardeen Mandarkhan This is me 0000-0001-9169-1123

Devin Bhoodoo This is me 0000-0001-9179-9505

Project Number TEC/11/4/3/2018
Publication Date June 30, 2022
Acceptance Date April 22, 2022
Published in Issue Year 2022 Volume: 6 Issue: 2

Cite

Vancouver Gooroochurn M, Mungur M, Shamachurn H, Surnam Y, Mandarkhan F, Bhoodoo D. Investigation of the performance of ground-coupled heat exchanger technology for tempering air. Journal of Energy Systems. 2022;6(2):309-21.

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Electrical and Computer Engineering Research Group (ECERG)  8753


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