TY - JOUR
T1 - Chemo-poro-elastoplastic modelling of an oilwell cement paste
T2 - Macroscopic shrinkage and stress-strain behaviour
AU - Agofack, Nicolaine
AU - Ghabezloo, Siavash
AU - Sulem, Jean
N1 - Publisher Copyright:
© 2020 Elsevier Ltd
PY - 2020/6/1
Y1 - 2020/6/1
N2 - Analysing the response of cement sheath in oil, gas or geothermal wells submitted to mechanical loadings needs an appropriate constitutive law for the cement paste in wells conditions. The knowledge of the actual initial state of stress is a key point which requires a simulation of cement paste behaviour from placement to hardened state. A chemo-poro-elastoplastic model for macroscopic shrinkage and stress-strain behaviour of cement paste at the early age is developed in this paper. A modified Cam-Clay type yield surface and an associate plastic flow rule are used. The hydration is considered as a hardening mechanism of the yield surface, which also evolves with the development of plastic strains. The model shows a good capacity in capturing the basic mechanisms of both macroscopic shrinkage and stress-strain behaviour of an oilwell class G cement paste hydrated under various conditions of temperature and pressure. A strong coupling is found between the macroscopic shrinkage and the stress-strain response.
AB - Analysing the response of cement sheath in oil, gas or geothermal wells submitted to mechanical loadings needs an appropriate constitutive law for the cement paste in wells conditions. The knowledge of the actual initial state of stress is a key point which requires a simulation of cement paste behaviour from placement to hardened state. A chemo-poro-elastoplastic model for macroscopic shrinkage and stress-strain behaviour of cement paste at the early age is developed in this paper. A modified Cam-Clay type yield surface and an associate plastic flow rule are used. The hydration is considered as a hardening mechanism of the yield surface, which also evolves with the development of plastic strains. The model shows a good capacity in capturing the basic mechanisms of both macroscopic shrinkage and stress-strain behaviour of an oilwell class G cement paste hydrated under various conditions of temperature and pressure. A strong coupling is found between the macroscopic shrinkage and the stress-strain response.
KW - Cam-clays
KW - Hydration
KW - Macroscopic shrinkage
KW - Oilwell cement paste
KW - Poro-elastoplasticity
KW - Poromechanics
UR - https://www.scopus.com/pages/publications/85082776388
U2 - 10.1016/j.cemconres.2020.106046
DO - 10.1016/j.cemconres.2020.106046
M3 - Article
AN - SCOPUS:85082776388
SN - 0008-8846
VL - 132
JO - Cement and Concrete Research
JF - Cement and Concrete Research
M1 - 106046
ER -