Finite element modeling of borehole heat exchanger systems

  • Authors:
  • H. -J. G. Diersch;D. Bauer;W. Heidemann;W. Rühaak;P. Schätzl

  • Affiliations:
  • DHI-WASY GmbH, Groundwater Modelling Centre (GMC), Waltersdorfer Str. 105, 12526 Berlin, Germany;Institute of Thermodynamics and Thermal Engineering (ITW), University of Stuttgart, Pfaffenwaldring 6, 70550 Stuttgart, Germany;Institute of Thermodynamics and Thermal Engineering (ITW), University of Stuttgart, Pfaffenwaldring 6, 70550 Stuttgart, Germany;DHI-WASY GmbH, Groundwater Modelling Centre (GMC), Waltersdorfer Str. 105, 12526 Berlin, Germany;DHI-WASY GmbH, Groundwater Modelling Centre (GMC), Waltersdorfer Str. 105, 12526 Berlin, Germany

  • Venue:
  • Computers & Geosciences
  • Year:
  • 2011

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Abstract

Single borehole heat exchanger (BHE) and arrays of BHE are modeled by using the finite element method. The first part of the paper derives the fundamental equations for BHE systems and their finite element representations, where the thermal exchange between the borehole components is modeled via thermal transfer relations. For this purpose improved relationships for thermal resistances and capacities of BHE are introduced. Pipe-to-grout thermal transfer possesses multiple grout points for double U-shape and single U-shape BHE to attain a more accurate modeling. The numerical solution of the final 3D problems is performed via a widely non-sequential (essentially non-iterative) coupling strategy for the BHE and porous medium discretization. Four types of vertical BHE are supported: double U-shape (2U) pipe, single U-shape (1U) pipe, coaxial pipe with annular (CXA) and centred (CXC) inlet. Two computational strategies are used: (1) The analytical BHE method based on Eskilson and Claesson's (1988) solution, (2) numerical BHE method based on Al-Khoury et al.'s (2005) solution. The second part of the paper focusses on BHE meshing aspects, the validation of BHE solutions and practical applications for borehole thermal energy store systems.