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A Study on the Mix Design and Quality Factors of the Combined High Flowing Concrete Using High Belite Cement
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  • A Study on the Mix Design and Quality Factors of the Combined High Flowing Concrete Using High Belite Cement
  • A Study on the Mix Design and Quality Factors of the Combined High Flowing Concrete Using High Belite Cement
저자명
Kwon. Yeong-Ho
간행물명
Concrete journal
권/호정보
2002년|14권 3호|pp.121-129 (9 pages)
발행정보
한국콘크리트학회
파일정보
정기간행물|ENG|
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기타
이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

This study investigates experimentally into the design factors and quality variations having an effect on the properties of the combined high flowing concrete to be poured in the slurry wall of Inchon LNG in-ground receiving terminal. Especially, high belite cement and lime stone powder as cementitious materials and viscosity agent in order to improve self-compaction and hydration heat are used in this study. Water-cement ratio(W/C), fine aggregate volume ratio(Sr) and coarse aggregate volume ratio(Gv) as design factors of the combined high flowing concrete are applied to determine the optimum mix design proportion. Also quality variations for sensitivity test are selected items as followings. (1)Surface moisture(5cases) and (2)Fineness modulus of fine aggregate(5cases), (3)Concrete temperature(3cases), (4)Specific surface(3cases) and particle size of lime stone powder. As experimental results, water-cement ratio, fine and coarse aggregate volume ratio are shown as the optimum range 51%, 43% and 53% separately considering site condition of slurry wall. Also quality factors by sensitivity test should be controlled in the following ranges. (1) Surface moisture :to.67% and (2)Fineness modulus 2.6$pm$0.2 of fine aggregate, (3)Concrete temperature l0-20t, (4) Specific surface 6,000$ extrm{cm}^2$/g and particle size 9.7$pm$1.0${mu}{ extrm}{m}$ of lime stone powder. Based on the results of this study, the optimum mix design proportion of the combined high flowing concrete are selected and poured successfully in the slurry wall of LNG in-ground tank.