Drying Shrinkage and Durability of Concrete Using Fine River Sand

하천세사를 사용한 콘크리트의 건조수축 및 내구성

  • Bae, Suho (Department of Civil Engineering, Andong National University) ;
  • Jeon, Juntai (Department of Civil & Environmental Engineering, Inha Technacal College) ;
  • Kwon, Soonoh (Department of Civil Engineering, Andong National University)
  • Received : 2013.12.06
  • Accepted : 2013.12.17
  • Published : 2013.12.31

Abstract

The purpose of this research is to estimate the drying shrinkage and durability of concrete using the fine river sand to utilize it actively as an alternative aggregate for concrete. For this purpose, the fine river sand samples were collected at the mid and down stream of main stream of Nakdong-River, and then the concrete specimens using the fine river sand were made according to strength level. After obtaining relation equation between compressive strength and cement-water ratio from the mix experiment result, the concrete specimens using different fine river sand were made for the specified concrete strength of 35MPa, and then their drying shrinkage and durability such as the resistance to freeze and thaw and carbonation were evaluated. It was observed from the test result that the durability of concrete using fine river sand was similar to that of concrete using reference sand, but the drying shrinkage of concrete using the fine river sand with small fineness was comparatively larger than that of concrete using reference sand.

이 연구의 목적은 낙동강에 대규모로 부존되어 있는 세사를 콘크리트 잔골재로서 적극적으로 활용하기 위하여 이를 사용한 콘크리트의 건조수축 및 내구성을 평가하는 것이다. 이를 위하여 낙동강 본류의 중 하류에서 하천세사를 채취한 후 강도수준에 따라 콘크리트 배합실험을 수행하였다. 그 결과로부터 압축강도와 시멘트-물비의 상관식을 도출한 후 하천세사 종류별로 설계기준강도 35MPa에 대해서 콘크리트 공시체를 제작하여 이들의 건조수축과 동결융해 및 탄산화 저항성과 같은 내구성을 평가하였다. 그 결과, 하천세사를 사용한 콘크리트의 내구성은 기준모래를 사용한 콘크리트의 경우와 유사한 것으로 나타났으나, 하천세사의 건조수축은 조립률이 작은 경우 기준모래를 사용한 콘크리트보다 비교적 큰 것으로 나타났다.

Keywords

References

  1. Neville, A.M. (1997). "Properties of Concrete." WILEY, NEW YORK. N. Y.
  2. Bae, S.H., Kim, C.D., Lee, S.H. (2013). "Evaluation on Mix Characteristics of Concrete Using Fine Sand of Nakdong-River." Journal of the Korea Academia-Industrial cooperation Society , Vol. 14, No. 3, pp.1481-1488. https://doi.org/10.5762/KAIS.2013.14.3.1481
  3. Baek, C.W., Kim, H.S., Park, C.B., Jeun, J.Y., Choi, C.S., Ryu, D.H. (2007). "Influence of Qualities of Crushed Sand on Properties of Concrete using Mixed Fine Aggregate." Journal of the Korea Concrete Institute, Vol. 19, No. 1, pp.621-624.
  4. Chung, Y.S., Bae, S.H., Park, J.H. (1996). "Experimental Study on Physical Properties of High-Strength Concrete Using Sea Sand." Journal of the Korea Concrete Institute, Vol. 8, No. 3, pp.219-229.
  5. Freezing and Thawing of concrete. (2010). Tongyang Technical Information, Tongyang Cement&Energy Corp.
  6. KS F 2403 (2010). "Standard test method of making and curing concrete specimens.", Korean Standards Association.
  7. KS F 2405 (2010). "Standard test method for compressive strength of concrete.", Korean Standards Association.
  8. KS F 2424 (2010). "Standard test method for length change of mortar and concrete.", Korean Standards Association.
  9. KS F 2456 (2008). "Standard test method for resistance of concrete to rapid freezing and thawing.", Korean Standards Association.
  10. KS F 2584 (2010). "Standard test method for accelerated carbonation of concrete." Korean Standards Association.
  11. Lee, S.H., Shim, J.W. (2010). "Enactment Provision of Recycled Aggregate Concrete." Journal of the Korea Concrete Institute, Vol. 22, No. 1, pp.33-35.
  12. Ministry of Construction & Transportation (2005). "Development of technology to improve the quality of concrete using substitute aggregates." Korea Institute Of Construction Technology, Performance analysis on Construction Research & Development.
  13. Ministry of Land, Infrastructure, and Transport (2010). A study of stable supply and quality improvement for aggregates. Construction and Economy Research Institute of Korea.
  14. Park, J.I., Bae, S.H., Kwon, S.O., Kim, C.D., Lee, S.H. (2012). "Aggregate Utilization Estimation of River Sand according to Typical Location of Main Stream of Nakdong-River." Journal of the Korea Academia-Industrial cooperation Society ,Vol. 3, No. 8, pp.3719-3725.
  15. Seo, C.H., Lee, H.S. (2002). "Mechanism and Effect Factors of Carbonation in Concrete." Proceedings of the Korea Concrete Institute, pp.3-12.
  16. Sim, J.S., Park, C.W., Park, S.J., Kang, T.S., Ju, M.K., Kim, T.S. (2008). "An Experimental Study on Resistance of rapid Freezing and Thawing of Chloride-inhibiting Low-Heat Cement." Proceedings of the Korea Concrete Institute, Vol. 20, No. 1, pp.589-592.
  17. Yang, E.I., Kim, I.S., Yi, S.T., Lee, K.M. (2010). "Comparison of Measurement Methods and Prediction Models for Drying Shrinkage of Concrete." Journal of the Korea Concrete Institute, Vol. 22, No 1, pp.55-91.