Numerical modelling of deep coaxial borehole heat exchangers in the Cheshire Basin, UK
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作者:
Brown, Christopher S.
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Univ Birmingham, Dept Civil Engn, Birmingham B15 2TT, W Midlands, EnglandUniv Birmingham, Dept Civil Engn, Birmingham B15 2TT, W Midlands, England
Brown, Christopher S.
[1
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Cassidy, Nigel J.
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Univ Birmingham, Dept Civil Engn, Birmingham B15 2TT, W Midlands, EnglandUniv Birmingham, Dept Civil Engn, Birmingham B15 2TT, W Midlands, England
Cassidy, Nigel J.
[1
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Egan, Stuart S.
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Keele Univ, Sch Geog Geol & Environm, William Smith Bldg, Keele ST5 5BG, Staffs, EnglandUniv Birmingham, Dept Civil Engn, Birmingham B15 2TT, W Midlands, England
Egan, Stuart S.
[2
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Griffiths, Dan
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Cheshire East Council, Middlewich Rd, Sandbach CW11 1HZ, EnglandUniv Birmingham, Dept Civil Engn, Birmingham B15 2TT, W Midlands, England
Griffiths, Dan
[3
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机构:
[1] Univ Birmingham, Dept Civil Engn, Birmingham B15 2TT, W Midlands, England
[2] Keele Univ, Sch Geog Geol & Environm, William Smith Bldg, Keele ST5 5BG, Staffs, England
[3] Cheshire East Council, Middlewich Rd, Sandbach CW11 1HZ, England
Few deep wells have been drilled in the Cheshire Basin, resulting in high geological and financial risk of geothermal developments. Although the geothermal gradient in the basin can be predicted, the transmissivity of aquifers at depth are unknown. This has led to an investigation of lower risk strategies such as deep coaxial borehole heat exchangers (BHEs) for spatial heating, rather than traditional doublet methods. A model of a deep coaxial BHE was designed within MATLAB using the finite-difference method. The model produces accurate results in comparison to an analytical solution with a fast computational time. Results indicate that under best case geological parameters sustainable heat loads in excess of 298.7 kW can be produced from deep coaxial borehole heat exchangers at a depth of 2.8 km over the duration of a 20 year operational cycle. The thermal gradient and conductivity for this scenario were set at 27 ?C/km and 3 W/m?C, respectively. The thermal gradient, depth of borehole, volumetric flow rate and thermal conductivity of the surrounding rock all impact the heat load and outlet temperature of a deep coaxial borehole heat exchanger. The coefficient of system performance decreases with increased volumetric flow rates due to an increase in power consumption within the borehole heat exchanger. For an optimal flow rate of 4 l/s (calculated as the flow rate to produce most net power at the end of a heating season), the coefficient of system performance was 5.29. The thermal performance and efficiency of the system provides confidence that the geothermal resource of the Cheshire Basin has significant potential to be developed via deep coaxial borehole heat exchangers. Additionally, regression analysis was undertaken in this study. These models can be used to predict heat loads and outlet temperatures at the end of a heating season without the need for complex numerical modelling.
机构:
Univ Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, ScotlandUniv Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, Scotland
Banks, David
Brown, Christopher S.
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Univ Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, ScotlandUniv Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, Scotland
Brown, Christopher S.
Kolo, Isa
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Univ Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, ScotlandUniv Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, Scotland
Kolo, Isa
Falcone, Gioia
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Univ Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, ScotlandUniv Glasgow, James Watt Sch Engn, James Watt South Bldg, Glasgow G12 8QQ, Scotland
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Hong Kong Polytech Univ, Dept Bldg Serv Engn, Hong Kong, Peoples R ChinaHong Kong Polytech Univ, Dept Bldg Serv Engn, Hong Kong, Peoples R China
Pan, Aiqiang
Lu, Lin
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Hong Kong Polytech Univ, Dept Bldg Serv Engn, Hong Kong, Peoples R ChinaHong Kong Polytech Univ, Dept Bldg Serv Engn, Hong Kong, Peoples R China
Lu, Lin
Cui, Ping
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Minist Educ, Key Lab Renewable Energy Utilizat Technol Bldg, Jinan, Shandong, Peoples R China
Shandong Jianzhu Univ, Sch Thermal Energy Engn, Jinan, Shandong, Peoples R ChinaHong Kong Polytech Univ, Dept Bldg Serv Engn, Hong Kong, Peoples R China
Cui, Ping
Jia, Linrui
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Minist Educ, Key Lab Renewable Energy Utilizat Technol Bldg, Jinan, Shandong, Peoples R China
Shandong Jianzhu Univ, Sch Thermal Energy Engn, Jinan, Shandong, Peoples R ChinaHong Kong Polytech Univ, Dept Bldg Serv Engn, Hong Kong, Peoples R China
机构:
McMaster Univ, Dept Mech Engn, 1280 Main St West, Hamilton, ON L8S 4L8, CanadaMcMaster Univ, Dept Mech Engn, 1280 Main St West, Hamilton, ON L8S 4L8, Canada
Harris, B. E.
Lightstone, M. F.
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McMaster Univ, Dept Mech Engn, 1280 Main St West, Hamilton, ON L8S 4L8, CanadaMcMaster Univ, Dept Mech Engn, 1280 Main St West, Hamilton, ON L8S 4L8, Canada
Lightstone, M. F.
Reitsma, S.
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GeoSource Energy, 1508 Hwy 54, Caledonia, ON N3W2G9, CanadaMcMaster Univ, Dept Mech Engn, 1280 Main St West, Hamilton, ON L8S 4L8, Canada
Reitsma, S.
Cotton, J. S.
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McMaster Univ, Dept Mech Engn, 1280 Main St West, Hamilton, ON L8S 4L8, CanadaMcMaster Univ, Dept Mech Engn, 1280 Main St West, Hamilton, ON L8S 4L8, Canada
机构:
Alma Mater Studiorum Univ Bologna, Dipartimento Ingn Energet Nucl & Controllo Ambien, I-40136 Bologna, ItalyAlma Mater Studiorum Univ Bologna, Dipartimento Ingn Energet Nucl & Controllo Ambien, I-40136 Bologna, Italy
Lazzari, S.
Priarone, A.
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Alma Mater Studiorum Univ Bologna, Dipartimento Ingn Energet Nucl & Controllo Ambien, I-40136 Bologna, ItalyAlma Mater Studiorum Univ Bologna, Dipartimento Ingn Energet Nucl & Controllo Ambien, I-40136 Bologna, Italy