Study of a U-tube heat exchanger using a shape-stabilized phase change backfill material

This article describes the use of FLUENT software to simulate the heat transfer performance of U-tube heat exchangers in the ground source heap pump using the backfill materials of shape-stabilized phase change materials and crushed stone concrete. In this study, the shape-stabilized phase change material is a mixture of decanoic acid and lauric acid with the following mass concentration compositions: decanoic acid = 60%, silica = 10%, and expanded graphite = 6%. The mixture of shape-stabilized phase change material has a coefficient of thermal conductivity of 1.528 W/(m·K) and a latent heat of 109.2 kJ/kg. From the results of a 12-h simulation of the heat transfer dynamics, the heat exchange for a unit borehole depth of backfilling with shape-stabilized phase change material is 1.223 times the heat exchange for a unit borehole depth of backfilling with crushed stone concrete. In addition, the thermal influence radius of the backfill materials of shape-stabilized phase change material is 0.9 times of that of crushed stone concrete. As a result, under the same area of the buried pipes region, the shape-stabilized phase change material backfill can achieve a heat exchange 1.359 times that of crushed stone concrete backfill. Meanwhile, using shape-stabilized phase change material could contain the sustaining decline in coefficient of performance of heat pump at refrigerate condition to a certain extent and the appropriate physical parameters of phase change materials are also crucial.

[1]  Xingxiang Zhang,et al.  Polyurethane foam containing microencapsulated phase-change materials with styrene–divinybenzene co-polymer shells , 2009 .

[2]  Adriaan S. Luyt,et al.  Comparison of LDPE, LLDPE and HDPE as matrices for phase change materials based on a soft Fischer–Tropsch paraffin wax , 2010 .

[3]  Daniel Pahud,et al.  Comparison of the thermal performance of double U-pipe borehole heat exchangers measured in situ , 2001 .

[4]  Luisa F. Cabeza,et al.  PCM thermal energy storage tanks in heat pump system for space cooling , 2014 .

[5]  Zhang DaLei,et al.  The research and utilization on biomass gasification , 2008 .

[6]  Jun Wang,et al.  Heat conduction enhanced shape-stabilized paraffin/HDPE composite PCMs by graphite addition: Preparation and thermal properties , 2010 .

[7]  Yan Gui-lan Numerical study on unsteady heat transfer of underground heat exchanger of GCHP , 2008 .

[8]  Hüseyin Benli,et al.  Evaluation of ground-source heat pump combined latent heat storage system performance in greenhouse heating , 2009 .

[9]  Yuan Hu,et al.  The Thermal Property and Flame Retardant Mechanism of Intumescent Flame Retardant Paraffin System with Metal , 2010 .

[10]  Hüseyin Benli,et al.  Energetic performance analysis of a ground-source heat pump system with latent heat storage for a greenhouse heating , 2011 .

[11]  L. Domenech,et al.  Improvement of a heat pump based HVAC system with PCM thermal storage for cold accumulation and heat dissipation , 2014 .

[12]  Yan Shang,et al.  Analysis on the transient heat transfer process inside and outside the borehole for a vertical U-tube ground heat exchanger under short-term heat storage , 2016 .