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Numerical analysis of enhanced conductive deep borehole heat exchangers
by
Verdin, Patrick G
, Pan, Lehua
, Doran, Hannah R
, Renaud, Théo
, Falcone, Gioia
in
Case studies
/ Cement
/ Electricity
/ Energy industry
/ Geothermal power
/ Graphite
/ Heat conductivity
/ Heat exchangers
/ Heat transfer
/ Permeability
/ Sustainability
/ Velocity
2021
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Numerical analysis of enhanced conductive deep borehole heat exchangers
by
Verdin, Patrick G
, Pan, Lehua
, Doran, Hannah R
, Renaud, Théo
, Falcone, Gioia
in
Case studies
/ Cement
/ Electricity
/ Energy industry
/ Geothermal power
/ Graphite
/ Heat conductivity
/ Heat exchangers
/ Heat transfer
/ Permeability
/ Sustainability
/ Velocity
2021
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Do you wish to request the book?
Numerical analysis of enhanced conductive deep borehole heat exchangers
by
Verdin, Patrick G
, Pan, Lehua
, Doran, Hannah R
, Renaud, Théo
, Falcone, Gioia
in
Case studies
/ Cement
/ Electricity
/ Energy industry
/ Geothermal power
/ Graphite
/ Heat conductivity
/ Heat exchangers
/ Heat transfer
/ Permeability
/ Sustainability
/ Velocity
2021
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Numerical analysis of enhanced conductive deep borehole heat exchangers
Journal Article
Numerical analysis of enhanced conductive deep borehole heat exchangers
2021
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Overview
Geothermal energy is a reliable and mature energy source, but it represents less than 1% of the total renewable energy mix. While the enhanced geothermal system (EGS) concept faces technical validation challenges and suffers from public acceptance issues, the development of unconventional deep-well designs can help to improve their efficiency and reliability. Modelling single-EGS-well designs is key to assessing their long-term thermal performances, particularly in unconventional geological settings. Numerical results obtained with the T2WELL/EOS1 code have been validated with available experimental data from a deep borehole heat exchanger (DBHE), where a temperature of 358 ∘C has been measured at a depth of 1962 m. Based on a calibrated model, the thermal performances of two enhanced thermal conductive DBHEs with graphite were compared for high geothermal gradients. The analysis highlights the potential recovery of a variable fraction of vapour. Graphite used along the well appears to be the most suitable solution to enhance the thermal output by 5 to 8% when compared to conventional wells. The theoretical implementation of such well in the Newberry volcano field was investigated with a single and doublet DBHE. The findings provide a robust methodology to assess alternative engineering solutions to current geothermal practices.
Publisher
MDPI,MDPI AG
Subject
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