A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells

© 2016 Elsevier B.V.Failure of cement sheath due to casing expansion or formations pressure during completion or production stages of HPHT or deep vertical wells is a very common phenomenon. There have been many studies providing approaches to predict cement sheath failure, where theory of elasticit...

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Main Authors: Gholami, Raoof, Aadnoy, B., Fakhari, N.
Format: Journal Article
Published: Elsevier 2016
Online Access:http://hdl.handle.net/20.500.11937/31225
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author Gholami, Raoof
Aadnoy, B.
Fakhari, N.
author_facet Gholami, Raoof
Aadnoy, B.
Fakhari, N.
author_sort Gholami, Raoof
building Curtin Institutional Repository
collection Online Access
description © 2016 Elsevier B.V.Failure of cement sheath due to casing expansion or formations pressure during completion or production stages of HPHT or deep vertical wells is a very common phenomenon. There have been many studies providing approaches to predict cement sheath failure, where theory of elasticity or thermo-elasticity together with the plane strain concept were taken into consideration to obtain representative results. However, sedimentary formations in subsurface layers are exhibiting a poroelastic behavior and theory of elasticity may not be able to fully describe their behaviors when changes in pore pressure and in-situ stresses are taking place. In this paper, an analytical approach based on the theory of thermo-poroelasticity was presented to predict the possibility of cement sheath failure in deep structures. A separate numerical molding was also performed to evaluate the application of the approach developed. The results obtained indicated that a thicker cement can withstand a higher load applied by the formations and protect the casing against a significant collapse pressure. The temperature was also found as a significant contributor in increasing the pressure applied by the formation and casing on the cement due to pore fluid and steel expansions. Although some discrepancies observed between the results of the numerical simulation and the analytical model, it seems that the approach presented is able to provide reliable results considering the fact that interactions of material interfaces could not be included in the analytical modeling.
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spelling curtin-20.500.11937-312252017-09-13T15:12:59Z A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells Gholami, Raoof Aadnoy, B. Fakhari, N. © 2016 Elsevier B.V.Failure of cement sheath due to casing expansion or formations pressure during completion or production stages of HPHT or deep vertical wells is a very common phenomenon. There have been many studies providing approaches to predict cement sheath failure, where theory of elasticity or thermo-elasticity together with the plane strain concept were taken into consideration to obtain representative results. However, sedimentary formations in subsurface layers are exhibiting a poroelastic behavior and theory of elasticity may not be able to fully describe their behaviors when changes in pore pressure and in-situ stresses are taking place. In this paper, an analytical approach based on the theory of thermo-poroelasticity was presented to predict the possibility of cement sheath failure in deep structures. A separate numerical molding was also performed to evaluate the application of the approach developed. The results obtained indicated that a thicker cement can withstand a higher load applied by the formations and protect the casing against a significant collapse pressure. The temperature was also found as a significant contributor in increasing the pressure applied by the formation and casing on the cement due to pore fluid and steel expansions. Although some discrepancies observed between the results of the numerical simulation and the analytical model, it seems that the approach presented is able to provide reliable results considering the fact that interactions of material interfaces could not be included in the analytical modeling. 2016 Journal Article http://hdl.handle.net/20.500.11937/31225 10.1016/j.petrol.2016.09.024 Elsevier restricted
spellingShingle Gholami, Raoof
Aadnoy, B.
Fakhari, N.
A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells
title A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells
title_full A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells
title_fullStr A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells
title_full_unstemmed A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells
title_short A thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells
title_sort thermo-poroelastic analytical approach to evaluate cement sheath integrity in deep vertical wells
url http://hdl.handle.net/20.500.11937/31225