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Simulation on the cyclic operation of an open borehole thermal energy storage system under regional groundwater flow

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Abstract

Coupled hydrogeological-thermal simulation is performed to analyze the effect of the configuration of boreholes and operation schedule on the performance of the borehole thermal energy storage (BTES) system. This paper presents numerical investigations and thermohydraulic evaluation on the cyclic flow regime operation of open borehole thermal energy storage system under the effects of regional groundwater flow. A three-dimensional numerical model for groundwater flow and heat transport in the ground is used to determine the annual variation of recovery temperature from the thermal energy storage. The model includes the effects of convective and conductive heat transfer, heat loss to the adjacent confining strata, and hydraulic anisotropy. The operation scenario consists of cyclic injection and recovery after holding interval and four periods per year to simulate the seasonal temperature conditions. For different parameters of the system, performances were compared in terms of the variation of extraction temperature. The calculated water temperature at the producing pipe remains relatively constant within a certain range throughout the simulation period. Heat loss, injection/production rate, aquifer thickness, and permeability ratio used in the model are shown to impact the predicted temperature profiles at each stage and the recovery water temperature. The influence of pressure gradient, which determines the direction and velocity of regional groundwater flow, is substantial for all cases considered.

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References

  • Breger, D.B., Hubbell, J.E., Hasnaoui, H.E., and Sunderland, J.E., 1996, Thermal energy storage in the ground: comparative analysis of heat transfer modeling using U-tubes and boreholes. Solar Energy, 56, 493–503.

    Article  Google Scholar 

  • Fan, R., Jiang, Y., Yao, Y., Shiming, D., and Ma, Z., 2007, A study on the performance of geothermal heat exchanger under coupled heat conduction and groundwater advection. Energy, 32, 2199–2209.

    Article  Google Scholar 

  • Florides, G. and Kalogirou, S., 2007, Ground heat exchangers A review of systems, models and applications. Renewable Energy, 32, 2461–2478.

    Article  Google Scholar 

  • Lee, K.S., 2008, Performance of open borehole thermal energy storage system under cyclic flow regime, Geosciences Journal, 12, 169–175.

    Article  Google Scholar 

  • Lee, K.S. and Jeong, S.J., 2008, Numerical modeling on the performance of aquifer thermal energy storage system under cyclic flow regime, International Journal of Green Energy, 5, 1–14.

    Article  Google Scholar 

  • Nagano, K., Mochida, T., and Ochifuji, K., 2002, Influence of natural convection on forced horizontal flow in saturated porous media for aquifer thermal energy storage. Applied Thermal Engineering, 22, 1299–1311.

    Article  Google Scholar 

  • Nassar, Y., ElNoaman, A., Abutaima, A., Yousif, S., and Salem, A., 2006, Evaluation of the underground soil thermal storage properties in Libya. Renewable Energy, 31, 593–598.

    Article  Google Scholar 

  • Nielsen, K., 2003, Thermal energy storage, A state-of-the-art, NTNU, Trondheim, 25 p.

    Google Scholar 

  • Ohga, H. and Mikoda, K., 2001, Energy performance of borehole thermal energy systems. Proceeding of Seventh International IBPSA Conference, 1009–1016.

  • O’sullivan, M.J., K. Pruess, and Lippmann, M.J., 2001, State of the art of geothermal reservoir simulation. Geothermics, 30, 395–429.

    Article  Google Scholar 

  • Paksoy, H.O., Gurbuz, Z., Turgut, B., Dikici, D., and Evliya, H., 2004, Aquifer thermal storage (ATES) for air-conditioning of supermarket in Turkey. Renewable Energy, 29, 1991–1996.

    Article  Google Scholar 

  • Probert, T., Hellsröm, G., and Glaesson, J., 1994, Thermohydraulic evaluation of two ATES projects in southern Sweden. In: Proceedings of International Symposium on Aquifer Thermal Energy Storage, Tuscaloosa, November 14–15, 73–81.

  • Rafferty, K., 2003, Ground water issues in geothermal heat pump systems. Groundwater, 41, 408–410.

    Google Scholar 

  • Reffstrup, J., Sørensen, S.N., and Qvale, B., 1994, Design and system integration of groundwater heating and cooling plants. In: Proceedings of International Symposium on Aquifer Thermal Energy Storage, Tuscaloosa, November 14–15, 15–28.

  • Rosen, M.A., 1999, Second-law analysis of aquifer thermal energy storage systems. Energy, 24, 167–182.

    Article  Google Scholar 

  • Sanner, B., 2001, Shallow geothermal energy. GHC Bulletin, 1925.

  • Tenma, N., Yasukawa, K., and Zyvoloski, G., 2003, Model study of thermal storage system by FEHM code. Geothermics, 32, 603–607.

    Article  Google Scholar 

  • Vinsome, P.K. and Westerveld, J., 1980, A simple method for predicting cap and base rock heat losses in thermal reservoir simulators. Journal of Canadian Petroleum Technology, 87–90.

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Correspondence to Kun Sang Lee.

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Lee, K.S. Simulation on the cyclic operation of an open borehole thermal energy storage system under regional groundwater flow. Geosci J 14, 217–224 (2010). https://doi.org/10.1007/s12303-010-0020-6

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  • DOI: https://doi.org/10.1007/s12303-010-0020-6

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