In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection

Downhole temperature variation of CO2 plays an important role in underground CO2 sequestration. Along the wellbore, the temperature difference between surrounding country rock and CO2 can cause the stress perturbation to the pre-historic in-situ stress, restricting the commercial injection rate and...

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Main Authors: Sagu, Ollivia L, Pao, William K. S.
Format: Citation Index Journal
Published: 2013
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Online Access:http://eprints.utp.edu.my/10952/1/AJAS40-49.pdf
http://eprints.utp.edu.my/10952/
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Institution: Universiti Teknologi Petronas
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spelling my.utp.eprints.109522013-12-16T23:48:26Z In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection Sagu, Ollivia L Pao, William K. S. TJ Mechanical engineering and machinery Downhole temperature variation of CO2 plays an important role in underground CO2 sequestration. Along the wellbore, the temperature difference between surrounding country rock and CO2 can cause the stress perturbation to the pre-historic in-situ stress, restricting the commercial injection rate and the depth of the targeted reservoir. The aim of the present study is to develop a simplified heat flow model along the wellbore, with the intention to use the generated temperature differential to study the thermal stress perturbation downhole. This study found that stress perturbation to the in-situ pre-historic stresses due to the temperature differential is dictated by circumferential heat transfer coefficient around the borehole, injection velocity and borehole radius. It is found that caprock is more prone to failure than the storage formation. The caprock, which has Young’s modulus value twice than the sandstone, reduce the breakdown pressure by six times when subjected to the same temperature differential. In-situ stress anisotropy is also found to be critical to the lowering of the breakdown pressure when subjected to the same temperature differential. Under the same temperature disturbance, an increase in in-situ stress anisotropy lead to a lowering of the fracture initiation pressure. Both of these structural aspects put a preliminary upper limit to the maximum allowable downhole temperature variation, directly restricting the upper limit of the subsurface sequestration rate. 2013 Citation Index Journal PeerReviewed application/pdf http://eprints.utp.edu.my/10952/1/AJAS40-49.pdf Sagu, Ollivia L and Pao, William K. S. (2013) In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection. [Citation Index Journal] http://eprints.utp.edu.my/10952/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Sagu, Ollivia L
Pao, William K. S.
In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection
description Downhole temperature variation of CO2 plays an important role in underground CO2 sequestration. Along the wellbore, the temperature difference between surrounding country rock and CO2 can cause the stress perturbation to the pre-historic in-situ stress, restricting the commercial injection rate and the depth of the targeted reservoir. The aim of the present study is to develop a simplified heat flow model along the wellbore, with the intention to use the generated temperature differential to study the thermal stress perturbation downhole. This study found that stress perturbation to the in-situ pre-historic stresses due to the temperature differential is dictated by circumferential heat transfer coefficient around the borehole, injection velocity and borehole radius. It is found that caprock is more prone to failure than the storage formation. The caprock, which has Young’s modulus value twice than the sandstone, reduce the breakdown pressure by six times when subjected to the same temperature differential. In-situ stress anisotropy is also found to be critical to the lowering of the breakdown pressure when subjected to the same temperature differential. Under the same temperature disturbance, an increase in in-situ stress anisotropy lead to a lowering of the fracture initiation pressure. Both of these structural aspects put a preliminary upper limit to the maximum allowable downhole temperature variation, directly restricting the upper limit of the subsurface sequestration rate.
format Citation Index Journal
author Sagu, Ollivia L
Pao, William K. S.
author_facet Sagu, Ollivia L
Pao, William K. S.
author_sort Sagu, Ollivia L
title In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection
title_short In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection
title_full In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection
title_fullStr In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection
title_full_unstemmed In-situ Stress Perturbation due to Temperature around Borehole during Carbon Injection
title_sort in-situ stress perturbation due to temperature around borehole during carbon injection
publishDate 2013
url http://eprints.utp.edu.my/10952/1/AJAS40-49.pdf
http://eprints.utp.edu.my/10952/
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