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Study on Burnability and Reactivity of High Al2O3 Content OPC Clinker for the Use of Industrial Waste

산업부산물 활용을 위한 고Al2O3 함량 OPC 클링커의 소성성 및 반응성에 관한 연구

  • 강봉희 (아세아시멘트 기술연구소) ;
  • 최재원 (아세아시멘트 기술연구소) ;
  • 기태경 (아세아시멘트 기술연구소) ;
  • 권상진 (아세아시멘트 기술연구소) ;
  • 김규용 (충남대학교 건축공학과)
  • Received : 2020.08.05
  • Accepted : 2020.09.14
  • Published : 2020.09.30

Abstract

This study evaluated the burnability and hydration reaction of clinker burned with high Al2O3 content OPC to apply large amounts of industrial by-products in the cement manufacturing process. Specifically, after preparing a clinker with a high C3A content by burning the OPC raw material with a high content of Al2O3 in a laboratory electric furnace, the burnability of the clinker was evaluated through XRD Rietveld analysis and polarization microscopy, and clinker hydration reactivity was reviewed through the Isothermal conduction calorimetry analysis and the cement compressive strength. As a result, the kiln burning temperature for the production of high Al2O3 content clinker lower, and the compressive strength was equal to or higher than OPC. Therefore it was confirmed the possibility to manufacturing energy-saving high Al2O3 content clinker using a large amount of industrial by-products.

본 연구에서는 클링커의 고Al2O3화를 통한 에너지 절감형 시멘트 제조 가능성을 확인하기 위해, Al2O3 함량이 높은 OPC 조합원료를 실험실 전기로에서 소성하여 C3A 함량이 높은 클링커를 제조한 후 XRD 리트벨트 분석 및 광학 현미경을 통해 클링커의 소성성을 평가하고, 제조된 클링커에 혼합재를 첨가하여 얻어진 시멘트의 미소수화열 및 압축강도 측정을 통해 시멘트 반응성을 평가하고자 하였다. 그 결과 Al2O3 함량을 일반 OPC보다 증가시켜 제조한 시멘트는 OPC에 비해 소성성이 뛰어나 시멘트 제조 에너지 절감에 기여할 수 있으며, OPC에 비해 C3A(alite) 광물의 함량이 감소하였음에도 불구하고 압축강도가 오히려 향상되는 등 긍정적으로 작용할 수 있다. 유동성 저하, 수화열 증가와 같은 문제에 대해서도 석고 첨가량 및 분말도 조정, 혼합재 첨가와 같은 방법으로 제어할 수 있을 것으로 기대되어 적극적인 연구가 필요하다.

Keywords

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