An Experimental Study to Evaluate the Flexural Performance of Steel Fiber-Reinforced Self-Compacting Concrete

강섬유를 보강한 자기충전 콘크리트의 휨 성능 평가를 위한 실험 연구

  • 박연동 (대구한의대학교 건축.토목설계학부)
  • Received : 2009.08.21
  • Accepted : 2009.10.12
  • Published : 2009.11.30

Abstract

An experimental study was carried out to estimate the flexural performance of steel fiberreinforced self-compacting concrete. Seven slabs with three different steel fiber-reinforced concretes were prepared to make beam specimens. After proper curing period, each slab was cut to five beams with a diamond saw. The beam specimen was tested with displacement control method to obtain load-deflection curve. As the results, the self-compacting concrete beam showed higher flexural strength, ductility and toughness index compared to the normal concrete beam. This means that steel fiber-reinforced self-compacting concrete can be used more widely in the field of architecture and civil engineering because of its self-compactability and good mechanical properties.

강섬유보강 자기충전 콘크리트의 휨 성능을 평가하기 위하여 실험을 중심으로 한 연구를 수행하였다. 보 시험체를 만들기 위하여 3종류의 강섬유보강 콘크리트로 7개의 슬래브를 제작하였으며, 일정 기간 양생 후 다이아몬드 날이 달린 절단기로 슬래브를 절단하여 1개의 슬래브 당 5개의 보 시험체를 획득하였다. 각 보 시험체의 하중-처짐 곡선은 변위조절방식을 사용하여 구하였다. 실험 결과, 자기충전 콘크리트는 휨강도 및 연성, 인성지수 등 휨 성능을 평가하는 모든 부분에서 일반 콘크리트보다 양호한 성능을 보여주었다. 결과적으로 다짐이 필요없는 강섬유보강 자기충전 콘크리트는 강섬유보강 콘크리트의 가장 큰 단점인 시공성 저하 문제를 획기적으로 개선할 뿐만 아니라 역학적 성질도 양호하여 향후 토목 건축 분야에서 폭넓게 활용될 수 있을 것으로 생각된다.

Keywords

References

  1. 강수태, 김윤용, 이방연, 김진근, "섬유의 방향성이 강섬유 보강 초고강도 콘크리트의 휨거동 특성에 미치는 영향," 콘크리트학회논문집, V. 20, No. 6, 2008, pp. 731-739
  2. 원종필, 박찬기, "하이브리드 섬유보강 콘크리트의 특성 및 적용," 콘크리트학회지, V. 18, No. 1, 2006,pp. 22-27
  3. 최연왕, 정재권, "고유동 콘크리트의 개발 및 활용," 한국콘크리트학회 2008년도봄학술대회논문집, V. 20,No. 1, pp. 1109-1112
  4. Bentur, A., "Fiber-Reinforced Cementitious Materials," Materials Science of Concrete, The American Ceramic Society, 1989, pp. 225-285
  5. Bui, V.K., Geiker, M.R. and Shah, S.P., "Rheology of Fiber Reinforced Cementitious Materials,"Proceedings HPFRCC 4, A. Naaman and H.W. Rheinhardt(Eds.), RILEM Pubs., Paris, 2003, pp.221-231
  6. Corinaldesi, V. and Moricini, G., "Durable Fiber Reinforced Self-Compacting Concrete," Cement and Concrete Research, V. 34, 2004, pp. 249-254 https://doi.org/10.1016/j.cemconres.2003.07.005
  7. Ferrara, L., Park, Y.D. and Shah, S.P., "A Method for Mix-Design of Fiber-Reinforced Self-Compacting Concrete," Cement and Concrete Research, V. 37, 2007, pp. 957-971 https://doi.org/10.1016/j.cemconres.2007.03.014
  8. Han, K.T. and Im, Y.T., "Numerical Simulation of Three-Dimensional Fiber Orientation in Short-Fiber-Reinforced Injection-Molded Parts," Journal of Material Processing Technology, V. 124,2002, pp. 366-37
  9. Kim, E.G., Park, J.K. and Jo, S.H., "A Study of Fiber Orientation during the Injection Molding of Fiber-Reinforced Polymeric Composites (Comparison between Image Processing Results and Numerical Simulation)," Journal of Material Processing Technology, V. 124, 2002, pp. 366-371
  10. Mobasher, B., Stang, H. and Shah, S.P.,"Microcracking in Fiber Reinforced Concrete," Cement and Concrete Research, V. 20, 1990,pp. 665-676 https://doi.org/10.1016/0008-8846(90)90001-E
  11. Naaman, A.E. and Reinhardt, H.W., "Characterization of High Performance Fiber Reinforced Cement Composites", High Performance Fiber Reinforced Cement Composites(HPFRCC2), 1996, pp. 1-23
  12. Vaxman, A. and Narkis, M., "Short-Fiber-Reinforced Thermoplastics: III. Effect of Fiber Length on Rheological Properties and Fiber Orientation,"Polymer composites, V. 10, 1989, pp. 454-461 https://doi.org/10.1002/pc.750100610
  13. Yu, A.B., Standish, N. and McLean, A., "Porosity Calculation of Binary Mixtures of Non Spherical Particles," Journal of the American Ceramic Society, V. 76, No. 11, 1993, pp. 2813-2816 https://doi.org/10.1111/j.1151-2916.1993.tb04021.x
  14. Yu, A.B., Zou, R.P. and Standish, N., "Packing of Ternary Mixtures of Non-Spherical Particles," Journal of the American Ceramic Society, V. 75, No. 10, 1992, pp. 265-272