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Research Article Issue
Corrosion Process of Steel Bar in A Hybrid Cement Mortar After Early-age Carbonation
Journal of the Chinese Ceramic Society 2025, 53(8): 2351-2361
Published: 29 May 2025
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Introduction

The alkaline nature of cementitious materials has high potential of carbon sequestration. Research has shown thatcarbonation curing to cementitious materials at early age can improve their strength and densify their microstructure. Consequently, itis expected that carbonation curing can enhance the durability of concrete structure. However, carbonation can naturalize the alkalineenvironment of concrete, raising risks of steel corrosion. The debate between the carbonation-induced microstructure improvementand the neutralization-raised corrosion risks has not been resolved yet. Therefore, it provides great incentives to understand ifcarbonation of cementitious materials at early age accelerates corrosion of steel bar or not.

Methods

A hybrid calcium-sulphoaluminate and Portland cement (CSA-PC) mortar was prepared to coat steel bars of 0.7 mm.Three carbonation durations of 4, 24 h and 72 h were designed to treat the CSA-PC mortar. The alkalinity of the composite mortarafter carbonation was characterized by phenolphthalein chromatography, and the water sorptivity of non-carbonated and carbonatedmortar specimens was measured by using a contrast-enhancing X-ray computed tomography (XCT). The corrosion process of thesteel bars was measured by open-circuit potential and corrosion current density up to 40 chlorine-salt drying-wetting (CSDW) cycles.The microstructure of the mortar and the corrosion rust distribution of the steel bars after the CSDW action were characterized byBSE-EDS and image analysis.

Results and discussion

Early-age carbonation significantly reduced the alkalinity of the mortar matrix, which recovered afterstandard curing up to 28 d but remained below the alkalinity threshold for the formation of passivation of steel (pH=11.5).Carbonation densified the pore structure of the hybrid cement mortar and reduced the capillary water absorption. The water sorptivityof the carbonated mortar specimens was significantly lower than that of the uncarbonated specimens as observed by XCT, indicatingan improvement in the impermeability of the mortar matrix. After 10 CSDW cycles, the open circuit potential of the carbonatedspecimens decreased significantly and the corrosion current density increased by nearly one order of magnitude. The early-agecarbonation significantly increased the probability and rate of corrosion of the steel bars in the mortar under cyclic CSDW actions.BSE-EDS analysis further showed that after carbonation, the rebars were severely corroded with corrosion pits up to 200 µm in depthand 20% in area; corrosion products migrated and filled the mortar matrix around the rebars, generating cracks.

Conclusions

The alkalinity of the mortar matrix decreased after early age carbonation, following recovery to a certain value afterstandard curing, which remained below the alkalinity threshold for steel passivation. Carbonation was able to improve thecompactness of the mortar matrix and enhance the material's impermeability. The open circuit potential of the carbonated materialwas lower and the corrosion current density was one order of magnitude higher after 10 CSDW cycles. Serious corrosion of the rebaroccurred in the mortar after carbonation, the corrosion products migrated to the surrounding mortar matrix, and the volumetricexpansion led to cracking of the matrix. The findings suggest that although early age carbonation may help to improve theperformance of cementitious material matrix, it may be detrimental to the durability of reinforced concrete.

Open Access Research Article Issue
A simple atomization approach enables monolayer dispersion of nano graphenes in cementitious composites with excellent strength gains
Nano Materials Science 2024, 6(2): 211-222
Published: 14 October 2023
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Carbon nano additives (CNAs) are critical to achieving the unique properties of functionalized composites, however, controlling the dispersion of CNAs in material matrix is always a challenging task. In this study, a simple atomization approach was successfully developed to promote the dispersion efficiency of graphene nanoplatelets (GNPs) in cement composites. This atomization approach can be integrated with the direct, indirect and combined ultrasonic stirrings in a homemade automatic stirring-atomization device. Mechanical and microstructure tests were performed on hardened cement pastes blended with GNPs in different stirring and mixing approaches. Results show that the direct ultrasonic stirrings enabled more homogeneous dispersions of GNP particles with a smaller size for a longer duration. The atomized droplets with the mean size of ~100 ​μm largely mitigated GNPs' agglomerations. Monolayer GNPs were observed in the cement matrix with the strength gain by up to 54%, and the total porosity decrease by 21% in 0.3 ​wt% GNPs dosage. The greatly enhanced dispersion efficiency of GNPs in cement also raised the cement hydration. This work provides an effective and manpower saving technique toward dispersing CNAs in engineering materials with great industrialization prospects.

Research Article Issue
Characterization of ITZ in Cement–based Materials by Mercury Intrusion Porosimetery and X-ray Computed Tomography
Journal of the Chinese Ceramic Society 2022, 50(8): 2136-2144
Published: 04 July 2022
Abstract PDF (13.5 MB) Collect
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Interfacial transition zone (ITZ) between cement matrix and aggregate is regarded as a weak phase that affects the mechanical properties and durability performance of concrete. Therefore, resolving ITZ around aggregate has always attracted great attentions in concrete research. Due to the limitation of resolution, using industrial X-ray computed tomography (XCT) to address three-dimensional (3D) morphology of ITZ becomes a challenge. However, the extremely high X-ray attenuation of mercury can greatly increase the contrast of XCT images when the pores of ITZ are filled with mercury. This regime allows visual characterization of ITZ for cement-based materials after mercury intrusion porosimetery (MIP). A glass rod was used as an aggregate to fabricate connected matrix-aggregate ITZs. The results show that the residual mercury droplets in pores after MIP enhance the gray values of ITZ, thus addressing the 3D structure of ITZ. The findings provide a new path to exploring the pore structure of matrix-aggregate ITZ in cement-based materials.

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