TY - JOUR
T1 - Modelling the poromechanical behaviour of class G cement paste
T2 - A multiphysics approach from early age to hardened state
AU - Pierre, Maxime
AU - Samudio, Marcos
AU - Ghabezloo, Siavash
AU - Dangla, Patrick
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2025/7/1
Y1 - 2025/7/1
N2 - Modelling cement-based materials from the early-age to the hardened state is crucial in numerous applications such as deep well cementing or 3D printing, which require comprehensive modelling of multiphysics couplings. To answer these requirements, a thermodynamically consistent time-dependent constitutive model based on the extent of hydration is developed in the framework of thermoporomechanics of partially saturated materials. Using minimal fitting, complex undrained oedometric tests on hydrating cement paste, combining effects of hydration progress, pore pressure evolution, elastic, viscous, and plastic deformations, are well reproduced numerically. In particular, the impact of early-age loading on the behaviour at a subsequent age, paramount in oil-well applications to understanding the consequences of pressurising the casing when the cement sheath is partially hydrated, is explained and quantitatively reproduced.
AB - Modelling cement-based materials from the early-age to the hardened state is crucial in numerous applications such as deep well cementing or 3D printing, which require comprehensive modelling of multiphysics couplings. To answer these requirements, a thermodynamically consistent time-dependent constitutive model based on the extent of hydration is developed in the framework of thermoporomechanics of partially saturated materials. Using minimal fitting, complex undrained oedometric tests on hydrating cement paste, combining effects of hydration progress, pore pressure evolution, elastic, viscous, and plastic deformations, are well reproduced numerically. In particular, the impact of early-age loading on the behaviour at a subsequent age, paramount in oil-well applications to understanding the consequences of pressurising the casing when the cement sheath is partially hydrated, is explained and quantitatively reproduced.
KW - Cement hydration
KW - Constitutive modelling
KW - Multiphysics couplings
KW - Oil-well cement
KW - Poromechanics
UR - https://www.scopus.com/pages/publications/86000508486
U2 - 10.1016/j.cemconres.2025.107852
DO - 10.1016/j.cemconres.2025.107852
M3 - Article
AN - SCOPUS:86000508486
SN - 0008-8846
VL - 193
JO - Cement and Concrete Research
JF - Cement and Concrete Research
M1 - 107852
ER -