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Evaluation of Chloride Diffusion Behavior and Analysis of Probabilistic Service Life in Long Term Aged GGBFS Concrete

장기 재령 GGBFS 콘크리트의 염화물 확산 거동 평가 및 확률론적 염해 내구수명 해석

  • 윤용식 (한남대학교 건설시스템공학과) ;
  • 김태훈 (한남대학교 건설시스템공학과) ;
  • 권성준 (한남대학교 건설시스템공학과)
  • Received : 2020.03.25
  • Accepted : 2020.04.27
  • Published : 2020.06.30

Abstract

In this study, three levels of W/B(Water to Binder) ratio (0.37, 0.42, 0.47) and substitution ratio of GGBFS (Ground Granulated Blast Furnace Slag) rate (0 %, 30 %, 50 %) were considered to perform RCPT (Rapid Chloride Diffusion Test) at the 1,095 aged day. Accelerated chloride diffusion coefficient and passed charge of each concrete mixture were assessed according to Tang's method and ASTM C 1202, and improving behaviors of durability performance with increasing aged days are analyzed based on the test results of previous aged days from the preceding study. As the age of concrete increases, the passed charge and diffusion coefficient have been significantly reduced, and especially the concrete specimens containing GGBFS showed a significantly more reduction than OPC(Ordinary Portland Cement) concrete specimen by latent hydraulic activity. In the case of OPC concrete's results of passed charge, at the 1,095 days, two of them were still in the "Moderate" class. So, if only OPC is used as the binder of concrete, the resistance performance for chloride attack is weak. In this study, the time-parameters (m) were derived based on the results of the accelerated chloride diffusion coefficient, and the deterministic and probabilistic analysis for service life were performed by assuming the design variable as a probability function. For probabilistic service life analysis, durability failure probabilities were calculated using Monte Carlo Simulation (MCS) to evaluate service life. The service life of probabilistic method were lower than that of deterministic method, since the target value of PDF (Probability of Durability Failure) was set very low at 10 %. If the target value of PDF suitable for the purpose of using structure can be set and proper variability can be considered for each design variable, it is believed that more economical durability design can be made.

콘크리트 구조물의 주요 열화 현상 중 하나인 염해는 내부 보강재의 부식을 야기하여 최종적으로 구조적 문제를 야기한다. 본 연구에서는 3가지 수준의 물-결합재 비 (0.37, 0.42, 0.47) 및 GGBFS 치환률 (0 %, 30 %, 50 %)을 고려한 콘크리트를 대상으로 재령 1,095일에 촉진염화물 확산 시험을 수행하였다. Tang's method와 ASTM C 1202에 준하여 각 배합의 촉진 염화물 확산계수 및 통과 전하량을 평가하였으며 선행 연구의 이전재령일 시험결과와의 고찰을 통해 재령의 증가에 따라 변화하는 내구성능 거동을 고찰하였다. 재령일이 증가함에 따라 통과 전하량과 확산계수는 크게 감소하였으며, 특히 GGBFS를 혼입한 배합에서는 잠재 수경성에 의해 OPC 배합 대비 큰 폭의 감소가 나타났다. 또한 OPC 배합의 통과 전하량 평가 결과의 경우, 재령 1,095일에서도 "Moderate" 등급에 포함되는 배합이 존재하기 때문에 OPC를 단독으로 사용하는 경우 염해에 취약한 것으로 사료된다. 본 연구에서는 촉진 염화물 확산계수 평가 결과를 기반으로 시간의존성지수를 도출하고 설계변수를 확률함수로 가정하여 결정론 및 확률론적 내구수명 해석을 수행하였다. 확률론적 내구수명 해석 시에는 MCS (Monte carlo Simulation)을 이용하여 내구성 파괴확률을 계산하여 내구수명을 도출하였다. 확률론적 내구수명은 결정론적 내구수명 대비 낮은 값을 나타내었는데 이는 목표 파괴 확률을 10 %로 매우 낮게 설정하였기 때문이다. 구조물의 용도에 적합한 목표 파괴확률을 설정하고 설계변수별로 적절한 변동성을 고려할 수 있다면 더욱 경제적인 설계가 가능해지리라 사료된다.

Keywords

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