DOI QR코드

DOI QR Code

Fundamental Study of Alkali Activated Cement Mortar for Evaluating Applicability of Partial-Depth Repair

도로포장 보수재 활용 가능성 평가를 위한 알칼리 활성 시멘트 모르타르 기초연구

  • 전성일 (한국건설기술연구원 도로연구실) ;
  • 안지환 (한국건설기술연구원 도로연구실) ;
  • 권수안 (한국건설기술연구원 도로연구실) ;
  • 윤경구 (강원대학교 공과대학 토목공학과)
  • Received : 2012.09.10
  • Accepted : 2013.04.18
  • Published : 2013.06.17

Abstract

PURPOSES : This study is to evaluate the feasibility of using the alkali activated cement concrete for application of partial-depth repair in pavement. METHODS : This study analyzes the compressive strength of alkali activated cement mortar based on the changes in the amount/type/composition of binder(portland cement, fly ash, slag) and activator(NaOH, $Na_2SiO_3$, $Na_2CO_3$, $Na_2SO_4$). The mixture design is divided in case I of adding one kind-activator and case II of adding two kind-activators. RESULTS : The results of case I show that $Na_2SO_4$ based mixture has superior the long-term strength when compared to other mixtures, and that $Na_2CO_3$ based mixture has superior the early strength when compared to other mixtures. But the mixtures of case I is difficult to apply in the material for early-opening-to-traffic, because the strength of all mixtures isn't meet the criterion of traffic-opening. The results of case II show that NaOH-$Na_2SiO_3$ based mixtures has superior the early/long-term strength when compared to NaOH-$Na_2SiO_3$ based mixtures. In particular, the NaOH-$Na_2SiO_3$ based some mixtures turned out to pass the reference strength(1-day) of 21MPa as required for traffic-opening. CONCLUSIONS : With these results, it could be concluded that NaOH-$Na_2SiO_3$ based mixtures can be used as the material of pavement repair.

Keywords

References

  1. Sim, J. I., Yang, K. H., 2010. Practical Application of GGBS-Based Alkali-Activated Binder to Secondary, Journal of the Korea Institute of Building Construction, Vol.10, No.5, pp37-44. https://doi.org/10.5345/JKIC.2010.10.5.037
  2. Yang, K. H., Sim, J. I., Song. J. G., Lee, J. H., 2011. Material Properties of Slag-Based Alkali-Activated Concrete Brick Masonry, Journal of Architecture Institute of Korea, Vol.27, No.1, pp119-126.
  3. Andersson, R. and Gram, H. E., 1987. Properties of Alkali- Activated Slag Concrete, Nordic Concrete Research, 6, 7-18.
  4. Caijun Shi, Pavel V. Krivenko, and Della Roy, 2006. Alkali- Activated Cements and Concretes, Taylor & Francis
  5. Jiang, W., 1997. Alkali-Activated Cementitious Materials: Mechanisms, Microstructure and Properties, Ph.D. Thesis, The Pennsylvania State University, Pennsylvania, US.
  6. Roy, D. M., 1999. Alkali-activated cements : Opportunities and challenges, Cement and Concrete Research, 29(2), 249-254 https://doi.org/10.1016/S0008-8846(98)00093-3
  7. Sing, N., Rai, S. and Singh, N. B., 2001. Effect of Sodium Sulphate on the Hydration of Granulated Blast Furnace Slag Blended Portland Cement, Indian Journal of Engineering and Materials Science, 8(2), 110-113.
  8. Shi, C., Tang, X. and Li, Y., 1991. Thermal Activation of Phosphorus slag, Il Cemento, 88(4), 219-225