Impact of microannulus on the efficiency of heat transfer in the bottomhole

To ensure feasible power generation from closed-loop geothermal wells, deeper wells are required to reach higher temperature zones. However, weak bonding between cement and casing or cement and formation may allow formation of a small gap (known as microannulus), which could have a negative effect o...

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Main Authors: Livio Santos, Arash Dahi Taleghani
Format: Article
Language:English
Published: Frontiers Media S.A. 2023-05-01
Series:Frontiers in Energy Research
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fenrg.2023.1142662/full
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author Livio Santos
Arash Dahi Taleghani
author_facet Livio Santos
Arash Dahi Taleghani
author_sort Livio Santos
collection DOAJ
description To ensure feasible power generation from closed-loop geothermal wells, deeper wells are required to reach higher temperature zones. However, weak bonding between cement and casing or cement and formation may allow formation of a small gap (known as microannulus), which could have a negative effect on the heat extraction rate and consequently compromises the entire investment. Previous projects have reported that the output temperatures were significantly lower than the expected values, and the cause is believed to be cement debonding. This study aims to develop a reliable simulation model to demonstrate the impact of microannulus in closed-loop geothermal systems. Multi-physics finite element analysis is used to construct models with and without microannulus. The microannulus is modeled based on real cement evaluation logs, with gaps varying between a few micrometers to few millimeters. In extreme cases, the presence of microannulus is found to decrease the geothermal power by more than 35%. Furthermore, the possibility of heat loss containment is investigated by a sensitivity study of wellbore parameters. These sensitivity analyses demonstrate that cement and geothermal fluids with higher thermal conductivity can improve but cannot compensate the presence of microannuli. The results also highlight the importance of proper cementing design to ensure wellbore integrity and avoid geothermal power loss.
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spelling doaj.art-2e410bf42ed24019a2ac4f5246e9c9932023-05-09T04:43:58ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2023-05-011110.3389/fenrg.2023.11426621142662Impact of microannulus on the efficiency of heat transfer in the bottomholeLivio SantosArash Dahi TaleghaniTo ensure feasible power generation from closed-loop geothermal wells, deeper wells are required to reach higher temperature zones. However, weak bonding between cement and casing or cement and formation may allow formation of a small gap (known as microannulus), which could have a negative effect on the heat extraction rate and consequently compromises the entire investment. Previous projects have reported that the output temperatures were significantly lower than the expected values, and the cause is believed to be cement debonding. This study aims to develop a reliable simulation model to demonstrate the impact of microannulus in closed-loop geothermal systems. Multi-physics finite element analysis is used to construct models with and without microannulus. The microannulus is modeled based on real cement evaluation logs, with gaps varying between a few micrometers to few millimeters. In extreme cases, the presence of microannulus is found to decrease the geothermal power by more than 35%. Furthermore, the possibility of heat loss containment is investigated by a sensitivity study of wellbore parameters. These sensitivity analyses demonstrate that cement and geothermal fluids with higher thermal conductivity can improve but cannot compensate the presence of microannuli. The results also highlight the importance of proper cementing design to ensure wellbore integrity and avoid geothermal power loss.https://www.frontiersin.org/articles/10.3389/fenrg.2023.1142662/fullmicroannuluswell integrityheat transfergeothermal wellscement integrity
spellingShingle Livio Santos
Arash Dahi Taleghani
Impact of microannulus on the efficiency of heat transfer in the bottomhole
Frontiers in Energy Research
microannulus
well integrity
heat transfer
geothermal wells
cement integrity
title Impact of microannulus on the efficiency of heat transfer in the bottomhole
title_full Impact of microannulus on the efficiency of heat transfer in the bottomhole
title_fullStr Impact of microannulus on the efficiency of heat transfer in the bottomhole
title_full_unstemmed Impact of microannulus on the efficiency of heat transfer in the bottomhole
title_short Impact of microannulus on the efficiency of heat transfer in the bottomhole
title_sort impact of microannulus on the efficiency of heat transfer in the bottomhole
topic microannulus
well integrity
heat transfer
geothermal wells
cement integrity
url https://www.frontiersin.org/articles/10.3389/fenrg.2023.1142662/full
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