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The Experimental Study on Mixing and Quality Properties of Quaternary Component Blended High Fluidity Concrete with CO2 Reduction

탄소저감형 4성분계 고유동 콘크리트의 배합 및 품질 특성에 관한 실험적연구

  • 조준희 ((주) 대우건설 기술연구원 토목연구팀) ;
  • 김용직 ((주) 대우건설 기술연구원 토목연구팀) ;
  • 오성록 (세명대학교 토목공학과) ;
  • 최연왕 (세명대학교 토목공학과)
  • Received : 2015.09.20
  • Accepted : 2015.09.25
  • Published : 2015.09.30

Abstract

In this study, $CO_2$ reduction type quaternary component high fluidity concrete was produced with more than 80% reduction in cement quantity to increase the use of industrial byproducts and enhance construction performance, thereby reducing $CO_2$ emissions. Furthermore, the quality properties, and $CO_2$ reduction performance of this concrete were evaluated. As a result of the quality evaluation of quaternary component blended high fluidity concrete with $CO_2$ reduction, the target performance could be achieved with a 80% or more reduction of cement quantity by mixing a large amount of industrial byproducts. The required performance level was obtained even though the flow, dynamic, and durability characteristics decreased a little compared to conventional mix. In addition, to analyze the $CO_2$ reduction performance of quaternary component blended high fluidity concrete with $CO_2$ reduction, the life cycle assessment (LCA) of the concrete was performed and the results showed that compared to the conventional mix, the carbon emissions decreased by 62.2% and the manufacturing cost by 24.5%.

본 논문에서는 탄소저감을 위한 산업부산물 사용 증대 및 시공성능 향상을 위하여 시멘트 사용량을 80% 이상 감소시킨 탄소저감형 4성분계 고유동 콘크리트를 제조하여 품질특성, 및 탄소저감 성능을 수행하였다. 탄소저감형 4성분계 고유동 콘크리트의 품질특성 평가를 수행한 결과 다량의 산업부산물을 혼합하여 시멘트 사용량을 80% 이상 감소시킨 배합에서 목표 성능을 만족하는 품질을 얻을 수 있었으며, 유동특성, 역학특성 및 내구특성의 경우 기존 기준 배합과 비교하여 다소 성능이 감소되는 경향이 나타났지만 소요 성능 수준 이상의 성능을 만족할 수 있는 것으로 판단된다. 또한, 탄소저감형 다성분계 고유동 콘크리트의 탄소저감 성능을 분석하기 위하여 콘크리트의 전 과정 평가를(LCA) 실시한 결과 기존 기준 배합과 비교하여 약 62.2%의 탄소저감 성능이 있는 것으로 나타났으며, 제조비용의 경우 약 24.5%의 원가 절감이 되는 것으로 나타났다.

Keywords

References

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