EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS

In oil reservoirs with bottom water drive, coning is a fundamental problem during oil production. Horizontal and deviated wells are often used to reduce the effect of water coning on total oil production. To avoid the premature breakthrough of water, the production of oil should be maximised through...

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Main Authors: Anis Zuriati Adzhar, Sulaimon Aliyu Adebayor
Format: Article
Language:English
Published: UTP Press 2019-05-01
Series:Platform, a Journal of Engineering
Subjects:
Online Access:https://myjms.mohe.gov.my/index.php/paje/article/view/4985/2145
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author Anis Zuriati Adzhar
Sulaimon Aliyu Adebayor
author_facet Anis Zuriati Adzhar
Sulaimon Aliyu Adebayor
author_sort Anis Zuriati Adzhar
collection DOAJ
description In oil reservoirs with bottom water drive, coning is a fundamental problem during oil production. Horizontal and deviated wells are often used to reduce the effect of water coning on total oil production. To avoid the premature breakthrough of water, the production of oil should be maximised through effective monitoring of the critical coning rate, and many researchers have developed models to determine the critical coning rate. However, very few studies have been conducted to evaluate the effect of good inclination and formation anisotropy on the critical coning rate. Therefore, we have incorporated well deviation and formation anisotropy into a water coning model to investigate their effects on the critical coning rate. Previous researches have been limited mainly to the calculation of water critical coning rate in the vertical well. In this study, a combination of radial and spherical flows in deviated wells has been adopted to develop a new model for analysing coning in non-vertical wells. The well inclination considered ranged from 20o to 80o, horizontal permeability (kh ) from 100 mD to 200 mD and the vertical permeability (kv ) was varied from 2 mD to 10 mD. Results showed that highly-deviated wells and formations with a high degree of reservoir heterogeneity (kv/kh) result in high critical coning rate and therefore less susceptible to early water breakthrough. This shows that more allowance to increase the production rate is possible for horizontal wells and anisotropic formations than in vertical and homogeneous reservoirs.
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spelling doaj.art-4b5dc9c03f3c4ce196b148b2e936e29d2023-08-21T01:43:29ZengUTP PressPlatform, a Journal of Engineering2636-98772019-05-01314355EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS Anis Zuriati Adzhar0Sulaimon Aliyu Adebayor1Department of Petroleum Engineering, Universiti Teknologi PETRONAS Department of Petroleum Engineering, Universiti Teknologi PETRONAS In oil reservoirs with bottom water drive, coning is a fundamental problem during oil production. Horizontal and deviated wells are often used to reduce the effect of water coning on total oil production. To avoid the premature breakthrough of water, the production of oil should be maximised through effective monitoring of the critical coning rate, and many researchers have developed models to determine the critical coning rate. However, very few studies have been conducted to evaluate the effect of good inclination and formation anisotropy on the critical coning rate. Therefore, we have incorporated well deviation and formation anisotropy into a water coning model to investigate their effects on the critical coning rate. Previous researches have been limited mainly to the calculation of water critical coning rate in the vertical well. In this study, a combination of radial and spherical flows in deviated wells has been adopted to develop a new model for analysing coning in non-vertical wells. The well inclination considered ranged from 20o to 80o, horizontal permeability (kh ) from 100 mD to 200 mD and the vertical permeability (kv ) was varied from 2 mD to 10 mD. Results showed that highly-deviated wells and formations with a high degree of reservoir heterogeneity (kv/kh) result in high critical coning rate and therefore less susceptible to early water breakthrough. This shows that more allowance to increase the production rate is possible for horizontal wells and anisotropic formations than in vertical and homogeneous reservoirs.https://myjms.mohe.gov.my/index.php/paje/article/view/4985/2145water coningdeviated wellsreservoir heterogeneityanisotropy permeabilitycritical coning ratecritical parameters
spellingShingle Anis Zuriati Adzhar
Sulaimon Aliyu Adebayor
EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS
Platform, a Journal of Engineering
water coning
deviated wells
reservoir heterogeneity
anisotropy permeability
critical coning rate
critical parameters
title EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS
title_full EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS
title_fullStr EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS
title_full_unstemmed EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS
title_short EVALUATING THE EFFECT WELL INCLINATION AND FORMATION ANISOTROPY ON CONING RATE IN DEVIATED WELLS
title_sort evaluating the effect well inclination and formation anisotropy on coning rate in deviated wells
topic water coning
deviated wells
reservoir heterogeneity
anisotropy permeability
critical coning rate
critical parameters
url https://myjms.mohe.gov.my/index.php/paje/article/view/4985/2145
work_keys_str_mv AT aniszuriatiadzhar evaluatingtheeffectwellinclinationandformationanisotropyonconingrateindeviatedwells
AT sulaimonaliyuadebayor evaluatingtheeffectwellinclinationandformationanisotropyonconingrateindeviatedwells