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Corrosion-Resisting Performance Evaluation of Concrete Mixed with Fly-Ash

플라이애시 혼합 콘크리트의 철근 부식 저항성능 평가

  • 박상순 (상명대학교 건설시스템공학과)
  • Received : 2016.11.15
  • Accepted : 2016.11.28
  • Published : 2017.01.01

Abstract

The role of fly ash in concrete become impotent with finding the characteristics of fly ash in which it is used as cement replacement material. In this paper, corrosion test results obtained by two test methods such as the long-term exposure corrosion test and the accelerated corrosion test method, were compared to investigated the corrosion resistance between fly ash concrete and normal concrete. Corrosion initiation time was measured in two types of concrete, i.e., one mixed with fly ash(FA) and the other without admixture(OPC). The accelerated corrosion test was carried out by four case, i.e., two samples is a cyclic drying-wetting method combined without carbonation(case 1) and combined with carbonation(case 2), and the other two samples is a artificial seawater ponding test method combined without carbonation(case 3) and combined with carbonation(case 4). Whether corrosion occurs, it was measures using half-cell potential method. The ponding test combined without carbonation was most effective in accelerating corrosion time of steel bars. The results indicated that the corrosion of rebar embedded in concrete occurred according to the order of OPC, FA. The delay relative ratio of corrosion obtained by corrosion initiation time between FA and OPC is 1.04 to 1.27. Consequently, fly ash concrete as the age increases its corrosion resistance was improved compared with OPC concrete.

플라이애시가 시멘트의 대체재로 사용되면서 플라이애시는 콘크리트의 특성변화에 중요한 역할을 하고 있다. 본 연구에서는 보통 콘크리트와 플라이애시를 혼입한 콘크리트의 철근부식에 대한 저항성을 평가하였다. 부식속도가 가장 빠른 간만대 환경을 모사한 최적 건습반복시험방법을 찾고 해양환경폭로시험장의 간만대에 장기간 노출된 시편의 철근부식모니터링 시험결과와의 비교를 통해 FA 혼입에 따른 OPC 대비 부식 지연비를 도출하였다. 반전지전위법에 의한 부식 모니터링 결과 인공해수에 3일간 침지 후 4일간 건조의 반복 조건보다는 염수를 시편 상부에 침지시켜 염수 및 산소의 공급이 계속되는 염수 ponding 시험법이 부식을 촉진시키는 것으로 나타났다. 모든 시험법에서 OPC에 비해 FA의 철근 부식이 지연되었다. FA의 철근부식 지연비율은 재령이 증가할수록 증가하였으며 OPC 대비 최대 27%까지 철근부식이 지연되었다. 그 결과 플라이애시 콘크리트는 재령이 증가할수록 철근부식 저항성능이 향상됨을 알 수 있었다.

Keywords

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