Conjugated numerical approach for modelling DBHE in high geothermal gradient environments

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dc.contributor.author Renaud, Théo
dc.contributor.author Verdin, Patrick
dc.contributor.author Falcone, Gioia
dc.date.accessioned 2020-11-26T17:43:32Z
dc.date.available 2020-11-26T17:43:32Z
dc.date.issued 2020-11-21
dc.identifier.citation Renaud T, Verdin PG, Falcone G. (2020) Conjugated numerical approach for modelling DBHE in high geothermal gradient environments. Energies, Volume 13, Issue 22, 2020, Article number 6107 en_UK
dc.identifier.issn 1996-1073
dc.identifier.uri https://doi.org/10.3390/en13226107
dc.identifier.uri https://dspace.lib.cranfield.ac.uk/handle/1826/16045
dc.description.abstract Geothermal is a renewable energy source that can be untapped through various subsurface technologies. Closed geothermal well solutions, such as deep geothermal heat exchangers (DBHEs), consist of circulating a working fluid to recover the available heat, with less dependency on the local geological settings than conventional geothermal systems. This paper emphasizes a double numerical method to strengthen the assessment of DBHE performances. A computational fluid dynamics (CFD) commercial software and the 1D coupled wellbore-reservoir geothermal simulator T2Well have been used to investigate the heat transfer and fluid flow in a vertical DBHE in high geothermal gradient environments. The use of constant water properties to investigate the energy produced from DBHEs can lead to underestimating the overall heat transfer at high temperature and low mass flow rate. 2D axisymmetric CFD modelling improves the understanding of the return flow at the bottom of the DBHE, readjusting and better estimating the pressures losses commonly obtained with 1D modelling. This paper highlights the existence of convective cells located at the bottom of the DBHE internal tubing, with no significant effects due to the increase of injected water flow. Both codes are shown to constrain the numerical limitations to access the true potential of geothermal heat extraction from DBHEs in high geothermal gradient environments and demonstrate that they can be used for geothermal energy engineering applications. en_UK
dc.language.iso en en_UK
dc.publisher MDPI en_UK
dc.rights Attribution 4.0 International *
dc.rights.uri http://creativecommons.org/licenses/by/4.0/ *
dc.subject geothermal energy CFD en_UK
dc.subject modeling en_UK
dc.subject deep wellbore heat exchanger en_UK
dc.title Conjugated numerical approach for modelling DBHE in high geothermal gradient environments en_UK
dc.type Article en_UK


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