• Title/Summary/Keyword: $CO_2$ reactive cement (CSC)

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Manufacturing Properties and Hardening Characteristic of CO2 Reactive Hardening Cement (이산화탄소 반응경화 시멘트 제조 및 경화특성 연구)

  • Ki-Yeon Moon;Byung-Ryeol Kim;Seung-Han Lee;Moon-Kwan Choi;Kye-Hong Cho;Jin-Sang Cho
    • Resources Recycling
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    • v.31 no.6
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    • pp.52-59
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    • 2022
  • Calcium silicate based cement (CSC) is a low-carbon cement that emits less CO2 by up to 70% compared to ordinary Portland cement during its manufacture. Most developed countries have commercialized CSC, whereas Korea is still investigating the manufacturing characteristics and basic properties of CSC. This paper provides a review of methods for manufacturing CSC using domestic raw materials and discusses the possibility of CSC localization based on an evaluation of the basic physical properties of manufactured CSC. The experimental results of this study indicate that the primary mineral components of CSC were CS, C3S2 C2S, and unreacted SiO2. This suggests the possibility of manufacturing CSC using domestic raw materials that exhibit mineral compositions similar to that of theoretical CSC. The compressive strength of CSC mortar is less than 1MPa at the age of 7 d under wet curing. This implies that hydration does not affect the property development of CSC mortar. Meanwhile, during carbonation curing, the compressive strength is 56 MPa or higher after 7 d, which indicates excellent early strength development. Furthermore, results of Thermogravimetric Analysis Differential scanning calorimetry (TG/DSC) show that a significant amount of CaCO3 is formed, which is consistent with the results of previous studies. This implies that carbonation is associated significantly with the properties of CSC.

Component and Phase Analysis of Calcium Silicate Cement Clinker by Raw Materials Mix Design (원료 배합에 따른 칼슘 실리케이트 시멘트 클링커의 성분 및 상 분석)

  • Lee, Hyang-Sun;Song, Hun
    • Journal of the Korea Institute of Building Construction
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    • v.22 no.3
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    • pp.251-258
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    • 2022
  • In the cement industry, in order to reduce CO2 emissions, technology for raw materials substitution and conversion, technology for improving process efficiency of utilizing low-carbon new heat sources, and technology for collecting and recycling process-generated CO2 are being developed. In this study, we conducted a basic experiment to contribute to the development of CSC that can store CO2 as carbonate minerals among process-generated CO2 capture and recycling technologies. Three types of CSC clinker with different SiO2/(CaO+SiO2) molar ratios were prepared with the clinker raw material formulation, and the characteristics of the clinker were analyzed. As a result of analysis and observation of CSC clinker, wollastonite and rankinite were formed. In addition, as a result of the carbonation test of the CSC paste, it was confirmed that calcite was produced as a carbonation product. The lower the SiO2/(CaO+SiO2) molar ratio in the CSC clinker chemical composition, the lower the wollastonite production amount, and the higher the rankinite production amount. And the amount of calcite production increased with the progress of carbonation of the CSC paste specimen. It is judged that rankinite is more reactive in mineralizing CO2 than wollastonite.

Improving the CO2 Sequestration Capability and Mechanical Properties of CO2 Reactive Cement Paste Using pH Swing Method (pH Swing법을 활용한 이산화탄소 반응경화형 시멘트 경화체의 CO2 고정화 성능 및 기계적 물성 개선)

  • Cho, Seong-Min;Kim, Gyeong-Ryul;Bae, Sung-Chul
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2023.05a
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    • pp.115-116
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    • 2023
  • This study aims to investigate and improve the carbon dioxide sequestration capability and the mechanical properties of non-hydraulic low calcium silicate cement especially designed for CO2 reaction and ordinary Portland cement subjected to the carbonation curing facilitating pH swing method. Nitric acid (HNO3) was utilized as an liquid for the mixing of cement paste to enhance the initial dissolution of Ca ions from the cements by promoting low pH environment and prevent the direct precipitation of Ca with the anion, owing to the high solubility of Ca(NO3)2 in water. The results presented that the higher the concentration of HNO3, the higher the compressive strength and CO2 sequestration (until 0.1 M). Ca dissolution caused by the harsh acid attack onto the anhydrous cement particle lead to the higher carbonation reaction degree, forming abundant CaCO3 crystals after the reaction. However, cement paste mixed with excessively high concentration of HNO3 presented deterioration due to the too harsh pH environment and abundant NO3- ions which are known to retard the reaction of cement.

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