Related Experiment Video
Updated: Sep 14, 2025

Production and Analysis of Sporosarcina pasteurii Biocement Bricks Using Custom 3D-Printed Molds for Unconfined Compression Tests
Published on: March 7, 2025
A Comprehensive Review of Cement Degradation Analysis under Downhole Conditions: CCS/CCUS/CO2‑EOR Applications
Orkhan Mammadov1, Ahmed Abdulhamid Mahmoud1,2, Ahmed Al-Yaseri2
1College of Petroleum Engineering and Geosciences, King Fahd University of Petroleum & Minerals, 31261 Dhahran, Saudi Arabia.
None:
The long-term performance of wellbore cement in CO2-rich environments remains a critical challenge for carbon capture and storage (CCS), carbon utilization and storage (CCUS), and CO2-enhanced oil recovery (CO2-EOR) operations. Under downhole conditions, cement degradationprimarily driven by carbonation and bicarbonationcan lead to microcracking, increased permeability, and loss of well integrity. This review presents a comprehensive synthesis of degradation mechanisms, evaluating the interplay between CO2 exposure, pressure, temperature, and curing conditions on cement properties. We critically examine both traditional and advanced cement systems, including Portland-based formulations, pozzolanic blends, calcium aluminate, geopolymers, and polymer-enhanced cements. Particular focus is given to experimental findings on mechanical property evolution (e.g., compressive, tensile, and bond strength) and transport behavior under simulated downhole conditions. Modern characterization techniques such as scanning electron microscopy (SEM), X-ray diffraction (XRD), computed tomography (CT), and Fourier-transform infrared spectroscopy (FTIR) are reviewed, alongside emerging machine learning approaches for predicting degradation and optimizing cement design. Despite decades of research, significant gaps remain in testing standards, long-term performance prediction, and integration of mechanical and chemical deterioration models. This paper identifies those gaps and proposes strategies to enhance cement durability, including the use of nanomaterials, particle-engineered systems, and tailored additives. Ultimately, this review serves as both a critical reference and a practical guide for developing robust, CO2-resistant cement systems capable of maintaining zonal isolation in high-stress, corrosive subsurface environments.
More Related Videos
Related Concept Videos
Carbonation Shrinkage
The concrete's permeability is slightly reduced as calcium carbonate produced during the reaction fills its pores. Furthermore, its strength is slightly enhanced as the water released during the reaction...
Soundness of Cement
Hydration of Cement
Porosity in Cement Paste
The balance of water to cement in the mix is...
Microcracking in Concrete
Effect of Sea Water on Concrete
Concrete in areas between tide marks,...

