DOI QR코드

DOI QR Code

광촉매 활용을 위한 실리케이트 기반 표면 침투제를 적용한 콘크리트의 역학적 성능 평가

Mechanical Performance Evaluation in Concrete Impregnated with Silicate for TiO2 Utilization

  • 김혁중 (한경대학교 산학협력단) ;
  • 김영기 (한경대학교 화학공학과) ;
  • 권성준 (한남대학교 건설시스템공학과)
  • Kim, Hyeok-Jung (Industry Academic Cooperation Foundation, Hankyong National University) ;
  • Kim, Young-Kee (Department of Chemical Engineering, Hankyong National University) ;
  • Kwon, Seung-Jun (Department of Civil Engineering, Hannam University)
  • 투고 : 2018.05.01
  • 심사 : 2018.06.22
  • 발행 : 2018.06.30

초록

콘크리트 구조물은 사용기간 동안 표면 열화 및 오염으로 인해 미관의 저하 및 내구성 저하가 발생된다. 최근 들어 광촉매(photocatalyst)를 이용하여 유기산화물을 제거하고 표면자기정화(self cleaning) 성능을 개선하려는 연구가 시도되고 있다. 본 논문은 실리케이트 기반 광촉매 함침을 위한 기초연구로서 CS와 SC 두 가지 함침 용액을 대상으로 하였다. 실리케이트 기반 용액의 점성과 표면장력을 평가하였으며 콘크리트에 적용하여 부착강도를 평가하였다. 또한 실리케이트 용액에 침지된 콘크리트에 대하여, 광촉매 용액의 침지 및 분무를 한 후 콘크리트 강도 평가와 SEM을 통한 표면상태를 조사하였다. 실리케이트 용액의 침지 후 30분간 기건 상태를 유지하고 분무하는 방법이 가장 효과적으로 광촉매의 표면 흡착을 유도하는 것으로 평가되었으며, 강도 개선에도 효과적임을 알 수 있다.

Degradations of durability and aesthetic performance in concrete happen during service life due to surface deterioration and dirt stains. Recently, many researches have been performed on self-cleaning and surface enhancement through surface impregnant using photocatalytic reaction with VOCs(Volatile Organic Compounds) removal. This paper is for preliminary study on surface impregnation with silicate and photocatalysis - $TiO_2$. For the work, two types of silicate based impregnants(CS - Coloidal Silica and SC - Sodium Alumina Silicate) are considered. Several tests for viscosity and surface tension are performed, and pull-off test on impregnated concrete is performed. For the surface impregnated concrete, $TiO_2$ is absorbed through submerging and spraying conditions. Through compressive strength test and SEM analysis, it is evaluated that spraying $TiO_2$ on surface impregnated concrete after 30min. of drying period is very effective both for strength enhancement and surface densification.

키워드

참고문헌

  1. Bank, L.C. (2006). Composites for Construction: Structural Design with FRP Material, JohnWiley & Sons, New Jersey, USA.
  2. Benoit-Marquie, F., Wilkenhoner, U., Simon, V. (2000). VOC photodegradation at the gas-solid interface of a $TiO_{2}$ photocatalyst, Journal of Photochemistry and Photobiology A: chemistry, 132(3), 225-232. https://doi.org/10.1016/S1010-6030(00)00196-9
  3. Berke, N.S., Hicks, M.C. (1992). Estimating the Life Cycle of Reinforced Concrete Decks and Marine Piles Using Laboratory Diffusion and Corrosion Data, Corrosion Forms and Control of Infrastructure, 207-231.
  4. Broomfield, J.P. (1997). Corrosion of Steel in Concrete: Understanding, Investigation and Repair, E & FN, London, 1-15
  5. Emmons, P.H. (1994). Concrete Repair and Maintenance Illustrated, R.S. Means Company, USA.
  6. EX: Korea Expressway Corporation Research Institute. (2006). Increasing the Quality of Recycled Aggregate by Surface Treatment and Durability evaluation of concrete, Gyeonggi-do, Korea, 227-228 [in Korean].
  7. Kim, H.W., Jung, B.W., Park, J.Y., Choi, Y.J., Kim, W.J. (2001). A basic study on development of photocatalystic block to purify polluted air, Journal of Korea Concrete Institute, 13(2), 1117-1122 [in Korean].
  8. Kwon, S.J., Park, S.S., Lee, S.M., Kim, J.H. (2007). A study on durability improvement for concrete structures using surface impregnant, Journal of Korea Structure Maintenance Institute, 11(4), 79-88 [in Korean].
  9. Lee, W.A., Yang J., Ryu, J.S., Lee, J.R. (2001). A study on the development for photocatalytic concrete with waste gas reduction and self-cleaning, Journal of Korea Concrete Institute, 13(2), 265-270 [in Korean].
  10. Moon, H.Y., Kim, S.S., Ahn, T.S., Kim, H.S. (1999). Effect of concrete coating materials for the improvement of concrete durability, Journal of Korea Concrete Institute, 11(1), 433-436 [in Korean].
  11. Moon, H.Y., Shin, D.G., Choi, D.S. (2007). Evaluation of the durability of mortar and concrete applied with inorganic coating material and surface treatment system, Construction and Building Materials, 21(2), 362-369. https://doi.org/10.1016/j.conbuildmat.2005.08.012
  12. Park, J.Y., Kim, H.W., Jung, B.W., Choi, Y.J., Kim, Y.H., Kim, W.J. (2001). An experimental study on the NOx removal properties of photocatalystic paint, Journal of Korea Concrete Institute, 13(2), 1123-1128 [in Korean].
  13. Park, S.S., Kim, Y.Y., Lee, B.J., Kwon, S.J. (2014). Evaluation of Concrete Durability Performance with Sodium Silicate Impregnants, Advances in Materials Science and Engineering, 2014, 11.
  14. Pi, U.H. (2005). Study of behavior of strength and clean of air condition using photocatalyst($TiO_{2}$) for concrete, Master's Thesis, Daegu, Kyungpook National University, Korea, 66-67 [in Korean].
  15. Sano, T., Negishi, N., Takeuchi, K., Matsuzawa, S. (2004). Degradation of toluene and acetaldehyde with Pt-loaded $TiO_{2}$ catalyst and parabolic trough concentrator, Association for Applied Solar Energy, 77(5), 543-552.
  16. Yamaguchi, S. (2004). Decomposition of volatile organic compounds, Journal of environmental hi-technology, 12(2), 32-38.