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Evaluation on In-Site Compressive Strength of High-Strength Concrete Mass Elements under Cold Weather

혹한기 고강도 콘크리트 매스부재의 현장 압축강도 평가

  • Mun, Jae-Sung (Department of Architectural Engineering, Graduate School Kyonggi University) ;
  • Yang, Keun-Hyeok (Department of Plant.Architectural Engineering, Kyonggi University) ;
  • Kim, Do-Gyeu (Structural Engineering & Bridges Research Division, Korea Institute of Construction Technology)
  • Received : 2015.07.07
  • Accepted : 2015.08.28
  • Published : 2015.12.20

Abstract

This study evaluated the in-site compressive strength development of high-strength concrete developed for the mass structures under cold weather condition. Two mock-up wall specimens with $2.0{\times}1.2{\times}1.0m$ in dimension were cured under an average temperature of $5^{\circ}C$. Core strengths measured at different locations of the mock-up walls were compared with the companion standard cylinder strengths. Test results revealed that the core strength of mock-up walls at an age of 3 days is higher by approximately 30% than the companion cylinder strength because of the high curing temperature effect generated from the heat of hydration of cementitious materials. Furthermore, comparisons with the prediction models based on maturity function confirmed that the effect of hydration heat on the curing temperature increase needs to be reflected to reasonably evaluate the on-site compressive strength development of concrete for mass elements.

이 연구에서는 혹한기 환경에서 매스부재에서 수화열을 고려한 고강도 콘크리트의 실제 압축강도 특성을 평가하였다. 목업 실험체는 가로${\times}$세로${\times}$높이가 $2.0{\times}1.2{\times}1.0m$로 제작하였다. 콘크리트 현장 압축강도 발현 특성은 $5^{\circ}C$에서 기건양생된 원주형 공시체와 수화열의 영향이 반영된 목업 벽체에서 채취된 코어 실험체를 비교하였다. 실험결과, 목업 벽체에서 채취된 코어의 재령 3일까지 압축강도는 실린더 강도에 비해 30% 높았는데, 이는 시멘트계 재료의 수화열에 의한 고온의 양생온도 효과 때문이다. 또한 성숙도 함수에 기반한 예측모델과 실험결과의 비교로부터 매스 부재에서 콘크리트의 현장 압축강도 발현을 합리적으로 평가하기 위해서는 수화열의 양생효과를 고려할 필요가 있음이 제시될 수 있다.

Keywords

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