4.7 Article

Influence on compressive strength and CO2 capture after accelerated carbonation of combination β-C2S with γ-C2S

期刊

CONSTRUCTION AND BUILDING MATERIALS
卷 312, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.conbuildmat.2021.125359

关键词

beta-C2S; gamma-C2S; Carbonation; CO2 sequestration; Compressive strength

资金

  1. National Natural Science Foundation of China [51972038]

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To address the global climate crisis, reducing greenhouse gas emissions and storing CO2 through CCS technology is urgent. By combining beta-C2S with gamma-C2S, rapid strength development and high CO2 sequestration can be achieved, benefiting the development of belite-rich cement and accelerating the absorption and storage of CO2 in the atmosphere.
In order to deal with the current global climate crisis, it is urgent to reduce greenhouse gas emissions and store CO2 in the atmosphere through Carbon Capture and Storage (CCS) technology. Both C3S and C2S are the main mineral components of Ordinary Portland Cement; through accelerated carbonation reaction, C2S could sequestrate more CO2 and gain a rapid development of early strength. beta-C2S and gamma-C2S, as two stable crystallines of C2S, can both capture CO2. Compared to beta-C2S, the gamma-C2S essentially shows no hydration activity, but gamma-C2S shows higher reactivity to CO2 during the carbonation process. The conversion of beta-C2S to gamma-C2S would cause volume expansion, saving electricity during the grinding process and reducing CO2 emissions. To synthetic different proportions of beta and gamma polymorphic of C2S, the different weight content of B2O3 (B2O3 wt%) was mixed with the analytical pure chemical reagent of CaCO3 and SiO2, and different cooling rates were used. The synthetic C2S (F1, S1, F2, S2) were exposed to pure CO2 gas with 2 bar pressure for 2 h. After carbonation, compressive strength was tested, carbonation degree was calculated. The synthetic C2S (S2) containing 57.8 wt% beta-C2S and 42.2 wt% gamma-C2S showed the highest compressive strength and the higher CO2 sequestration capacity, with the compressive strength of 46.3 MPa and the 32.17 % CO2 uptake. The XRD results and TG-DTG analysis have proved that different calcium carbonates, including calcite, aragonite, vaterite, and ACC (amorphous calcium carbonate), were formed after carbonation. FT-IR observed the characteristic vibration of calcium carbonate, the microstructure of different calcium carbonate crystals was observed by FE-SEM. The calcite in the S2-C group showed more thermodynamic stability, confirmed by TG analysis at the temperature stage of 680 degrees C similar to 800 degrees C. The mechanical bond force of rhombic calcite contributed to the high compressive strength. And S2-C group had the lowest porosity, which contained the highest volume of capillary pores and the lowest volume of macropores among the 4 groups. The combination of beta-C2S with gamma-C2S exhibited rapid strength development and high sequestration of CO2 after carbonation. The carbonation of combination of beta-C2S and gamma-C2S was able to devote to the rapid development of compressive strength and rather a high capacity of capturing CO2, and the proper proportions of beta-C2S and gamma-C2S were beneficial to develop belite-rich cement, as well as speed up the absorption and storage of CO2 in the atmosphere.

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