Experimental measurement and numerical simulation of horizontal-coupled slinky ground source heat exchangers
Results from both experimental measurements and 3D numerical simulations of Ground Source Heat Pump systems (GSHP) at a UK climate are presented. Experimental measurements of a horizontal-coupled slinky GSHP were undertaken in Talbot Cottage at Drayton St Leonard site, Oxfordshire, UK. The measured...
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Veröffentlicht in: | Applied thermal engineering 2010-11, Vol.30 (16), p.2574-2583 |
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Sprache: | eng |
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Zusammenfassung: | Results from both experimental measurements and 3D numerical simulations of Ground Source Heat Pump systems (GSHP) at a UK climate are presented. Experimental measurements of a horizontal-coupled slinky GSHP were undertaken in Talbot Cottage at Drayton St Leonard site, Oxfordshire, UK. The measured thermophysical properties of in situ soil were used in the CFD model. The thermal performance of slinky heat exchangers for the horizontal-coupled GSHP system for different coil diameters and slinky interval distances was investigated using a validated 3D model. Results from a two month period of monitoring the performance of the GSHP system showed that the COP decreased with the running time. The average COP of the horizontal-coupled GSHP was 2.5. The numerical prediction showed that there was no significant difference in the specific heat extraction of the slinky heat exchanger at different coil diameters. However, the larger the diameter of coil, the higher the heat extraction per meter length of soil. The specific heat extraction also increased, but the heat extraction per meter length of soil decreased with the increase of coil central interval distance.
► Detailed measurement and three dimensional modelling of slinky heat exchangers. ► The COP
h of the Horizontal-Coupled Slinky Ground Source Heat Pump varied with the ambient environmental conditions. ► The larger the diameter of the coil in the slinky heat exchanger, the higher the heat extraction per meter length of soil.► The heat extraction per meter length of soil decreased with the increase of the coil central interval distance. |
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ISSN: | 1359-4311 1873-5606 |
DOI: | 10.1016/j.applthermaleng.2010.07.008 |