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고강도 고로슬래그 혼합 시멘트 페이스트의 수화 및 포졸란 반응에 미치는 고로슬래그 미분말의 치환률과 분말도의 영향

Effects of Replacement Ratio and Fineness of GGBFS on the Hydration and Pozzolanic Reaction of High-Strength High-Volume GGBFS Blended Cement Pastes

  • 정지용 (한국철도기술연구원 고속철도연구본부) ;
  • 장승엽 (한국철도기술연구원 고속철도연구본부) ;
  • 최영철 (한국건설생활환경시험연구원 첨단건설재료센터) ;
  • 정상화 (한국건설생활환경시험연구원 첨단건설재료센터) ;
  • 김성일 (한국철도기술연구원 고속철도연구본부)
  • Jeong, Ji-Yong (High-speed Railroad Systems Research Center, Korea Railroad Research Institute) ;
  • Jang, Seung-Yup (High-speed Railroad Systems Research Center, Korea Railroad Research Institute) ;
  • Choi, Young-Cheol (High-tech Construction Materials Center, Korea Conformity Laboratories) ;
  • Jung, Sang-Hwa (High-tech Construction Materials Center, Korea Conformity Laboratories) ;
  • Kim, Sung-Il (High-speed Railroad Systems Research Center, Korea Railroad Research Institute)
  • 투고 : 2014.08.12
  • 심사 : 2014.12.22
  • 발행 : 2015.04.30

초록

본 연구는 물-결합재비 20%를 가지는 고강도 고함량 고로슬래그 혼합 시멘트 페이스트의 유동성, 수화열, 응결시간 그리고 강도 발현 특성, 수화 및 포졸란 반응 특성 등을 실험을 통해 관찰하고, 이를 통해 고로슬래그 미분말의 치환률과 분말도가 수화 및 포졸란 반응에 미치는 영향을 분석하였다. 연구 결과에 따르면 물-결합재비가 낮은 고강도 배합에서는 고로슬래그 미분말로 시멘트를 대체함으로써 시멘트와 결합하는 자유수가 상대적으로 증가하는 dilution effect에 의해 시멘트의 초기 수화가 촉진되어 재령 3일부터 28일까지의 초기 강도는 보통 포틀랜드 시멘트만을 사용한 배합보다 더 높게 나타났다. 반면, 재령이 증가하면서 수화반응속도가 급격히 낮아지고, 고로슬래그 미분말로 시멘트를 대량 치환함에 따라 수산화칼슘이 충분히 공급되지 못하므로 포졸란 반응도가 낮아져 장기강도의 발현이 억제되는 것으로 나타났다. 또한 고로슬래그의 분말도가 높으면 자유수를 더 많이 흡착함으로써 유동성이 저하되고 수화도가 낮아져 강도가 오히려 저하되는 것으로 나타났다. 이와 같은 결과는 보통 강도 콘크리트와는 다른 경향을 나타내는 것으로 향후 콘크리트 배합에 대해 추가 검증이 필요하며, 고로슬래그 미분말을 대량 혼합한 고강도 콘크리트의 개발을 위해서는 장기 강도의 발현율을 더 높일 수 있는 방안에 대한 연구가 필요하다.

This study investigated the fluidity, heat of hydration, setting time, strength development, and characteristics of hydration and pozzolanic reactions of high-strength high-volume ground granulated blast-furnace slag(GGBFS) blended cement pasts with the water-to-binder ratio of 20% by experiments, and analyzed the effects of the replacement ratio and fineness of GGBFS on the hydration and pozzolanic reaction. The results show that, in the high-strength mixtures with low water-to-binder ratio, the initial hydration is accelerated due to the "dilution effect" which means that the free water to react with cement increases by the replacement of cement by GGBFS, and thus, strengths at from 3 to 28 days were higher than those of plain mixtures with ordinary Portland cement only. Whereas it was found that the long term strength development is limited because the hydration reaction rates rapidly decreases with ages and the degree of pozzolanic reaction is lowered due to insufficient supply of calcium hydroxide according to large replacement of cement by GGBFS. Also, the GGBFS with higher fineness absorbs more free water, and thus it decreases the fluidity, the degree of hydration, and strength. These results are different with those of normal strength concrete, and therefore, should be verified for concrete mixtures. Also, to develop the high-strength concrete with high-volume of GGBFS, the future research to enhance the long-term strength development is needed.

키워드

참고문헌

  1. Choi, W. H., Park, C. W., Jung, W. K., Jeon, B. J., and Kim, G. S., "Durability characteristics of limestone powder added concrete for environment-friendly concrete," Journal of Korea Institute for Structural Maintenance Inspection, Vol. 16, No. 5, 2012, pp. 59-67. https://doi.org/10.11112/jksmi.2012.16.5.059
  2. Yang, K. H., Sim, J. I., Song, J. G., and Lee, J. H., "Material properties of slag-based alkali-activated concrete brick-masonry," Journal of the Architectureal Institute of Korea Structure & Construction, Vol. 27, No. 1, 2011, pp. 11-126.
  3. Choi, S. W., Ryu, D. H., Kim, H. S., and Kim, G. Y., "Hydration properties of low carbon type low heat blended cement," Journal of the Korea Institute of Building Construction, Vol. 13, No. 3, 2013, pp. 218-226. https://doi.org/10.5345/JKIBC.2013.13.3.218
  4. Cho, C. G., Lim, H. J., Yang, K. H., Song, J. K., and Lee, B. Y., "Basic mixing and mechanical tests on hihg ductile fiber reinforced cementless composites," Journal of the Korea Concrete Institute, Vol. 24, No. 2, 2012, pp. 121-127. https://doi.org/10.4334/JKCI.2012.24.2.121
  5. Hester, D., Mcnally, C., and Richardson, M. G., "Study of influence of slag alkali level on the alkali-silica reactivity of slag concrete," Construction and Building Materials, Vol. 19, No. 9, 2005, pp. 661-665. https://doi.org/10.1016/j.conbuildmat.2005.02.016
  6. Leng, F., Feng, N., and Lu, X., "An experiment study on the properties of resistance to diffusion of chloride ions of fly ash and blast furnace slag concrete," Cement and Concrete Research, Vol. 30, 2000, pp. 989-992. https://doi.org/10.1016/S0008-8846(00)00250-7
  7. Koh, K. T., Yoo, W. W., and Han, S. M., "A study on strength development and resistance to sulfate attack of mortar incorporating limestone powder," Journal of the Korea Concrete Institute, Vol. 16, No. 3, 2004, pp. 303-310. https://doi.org/10.4334/JKCI.2004.16.3.303
  8. Mindess, S., Young, J. F., and Darwin, D., Concrete, 2th ed., Rentice Hall, New Jersey, 2003, 644pp.
  9. Mehta, P. K. and Monteiro, P. J. M., Concrete, microstructure, properties, and materials, 3th. ed., McGraw-Hill, New-York, 2004, 659pp.
  10. Ryu, D. W., Kim, W. J., Yang, W. H., You, J. H., and Ko, J. W., "An experimental study on the freezing-thawing and chloride resistance of concrete using high volumes of GGBS," Journal of the Korea Institute of Building Construction, Vol. 12, No. 3, 2012, pp. 315-322. https://doi.org/10.5345/JKIBC.2012.12.3.315
  11. Ryu, D. W., Kim, W. J., Yang, W. H., and Park, D. C., "An experimental study on the carbonation and drying shrinkage of concrete using high volumes of ground granulated blastfurnace slag," Journal of the Korea Institute of Building Construction, Vol. 12, No. 4, 2012, pp. 393-400. https://doi.org/10.5345/JKIBC.2012.12.4.393
  12. Kwon, Y. J., "An experimental study on the carbonation and drying shrinkage of high strength concrete according to kinds and ratios of mineral admixtures," Journal of the Korea Institute of Building Construction, Vol. 3, No. 3, 2003, pp. 127-133. https://doi.org/10.5345/JKIC.2003.3.3.127
  13. Jung, J. D., Cho, H. D., and Park, S. W., "Properties of hydration heat of high-strength concrete and reduction strategy for heat production," Journal of the Korea Institute of Building Construction, Vol. 12, No. 2, 2012, pp. 203-210. https://doi.org/10.5345/JKIBC.2012.12.2.203
  14. Gengying, L. and Xiaohua, Z., "Properties of concrete incorporating fly ash and ground granulated blast-furnace slag," Cement and Concrete Composites, Vol. 25, 2003, pp. 293-299. https://doi.org/10.1016/S0958-9465(02)00058-6
  15. Kim, S. D., Kim, S. Y., Bae, K. S., Park, S. H., and Lee, B. S., "Field application of 80MPz high strength fire resistant concrete using ternary blended cement," Journal of the Korea Institute of Building Construction, Vol. 10, No. 5, 2010, pp. 113-119. https://doi.org/10.5345/JKIC.2010.10.5.113
  16. Chong, W., Changhui, Y., Fang L., Chaojun, W., and Xincheng, P., "Preparation of ultra-high performance concrete with common technology and materials," Cement and Concrete Composites, Vol. 34, 2012, pp. 538-544. https://doi.org/10.1016/j.cemconcomp.2011.11.005
  17. Kang, H., Ahn, J. M., and Shin, S. W., "Evaluation on mechanical and mixing properties of ultra-high strength concrete with fck=150MPa," Journal of the Korea Institute of Building Construction, Vol. 10, No. 3, 2010, pp. 113-120. https://doi.org/10.5345/JKIC.2010.10.3.113
  18. Halit, Y., Mert, Y., Huseyin, Y., Serdar, A., and Selcuk, T., "Mechanical properties of reactive powder concrete containing high volumes of ground granulated blast furnace slag," Cement and Concrete Composites, Vol. 32, 2010, pp. 639-648. https://doi.org/10.1016/j.cemconcomp.2010.07.005
  19. Siddique, R. and Bennacer, R., "Use of iron and steel industry by-product(GGBS) in cement paste and mortar," Resources Conservation and Recycling, Vol. 69, 2012, pp. 29-34. https://doi.org/10.1016/j.resconrec.2012.09.002
  20. KS L 5201:2013, Portland cement, KSA.
  21. KS F 2563:2009, Ground granulated blast-furnace slag for use in concrete, KSA.
  22. KS L ISO 679:2006, Methods of testing cements - Determination of strength, KSA.
  23. ASTM C230/C230M:13, Standard specification for flow table for use in tests of hydraulic cement, ASTM.
  24. KS L ISO 9597:2009, Determination of setting time and soundness of cements, KSA.
  25. KS L 5121:2007, Testing method for heat of hydration of hydraulic cement, KSA.
  26. ASTM D4284:12, Standard test method for determining pore volume distribution of catalysts and catalyst carrier by mercury intrusion porosimetry, ASTM.
  27. Escalante, J. I., Gomez, L. Y., Johal, K. K., Mendoza, G., Mancha, H., and Mendez, J., "Reactivity of blast-furnace slag in Portland cement blends hydrated under different conditions," Cement and Concrete Research, Vol. 31, 2001, pp. 1403-1409. https://doi.org/10.1016/S0008-8846(01)00587-7
  28. Ballim, Y. and Graham, P. C., "The effects of supplementary cementing materials in modifying the heat of hydration of concrete," Materials and Structures, Vol. 42, 2009, pp. 803-811. https://doi.org/10.1617/s11527-008-9425-3
  29. You, C. D., Hyun, S. H., and Song, J. T., "Rheological properties of cement paste containing ultrafine blastfurnace slag," Journal of the Korean Ceramic Society, Vol. 44, No. 8, 2007, pp. 430-436. https://doi.org/10.4191/KCERS.2007.44.8.430
  30. Wainwright, P. J. and Ait-Aider, H., "The influence of cement source and slag additions on the bleeding of concrete," Cement and Concrete Research, Vol. 25, No. 7, 1995, pp. 1445-1456. https://doi.org/10.1016/0008-8846(95)00139-4
  31. Olorunsogo, F. T., "Particle size distribution of GGBS and bleeding characteristics of slag cement mortars," Cement and Concrete Research, Vol. 28, No. 6, 1998, pp. 907-919. https://doi.org/10.1016/S0008-8846(98)00042-8
  32. Lee, K. M., Kwon, K. H., Lee, H. K., Lee, S. H., and Kim, G. Y., "Characteristics of autogenous shrinkage for concrete containing blast-furnace slag," Journal of the Korea Concrete Institute, Vol. 16, No. 5, 2004, pp. 621-626. https://doi.org/10.4334/JKCI.2004.16.5.621
  33. Escalante-Garcia, J. I. and Sharp, J. H., "Effect of temperature on the hydration of the main clinker phases in portland cements: Part II. Blended cements," Cement and Concrete Research, Vol. 28, 1998, pp. 1259-1274. https://doi.org/10.1016/S0008-8846(98)00107-0
  34. Copeland, L. E. and Kantro, D. L., "Hydration of Portland cement," 5th International Symposium on the Chemistry of Cement, Vol. 2, 1968, pp. 378-420.
  35. Narayanan, N., "Quantifying the effects of hydration enhancement and dilution in cement pastes containing coarse glass powder," Journal of Advanced Concrete Technology, Vol. 6, No. 3, 2008, pp. 397-408 https://doi.org/10.3151/jact.6.397
  36. De Schutter, G., "Effect of limestone filler as mineral addition in self-compacting concrete," 36th Conference on OUR WORLD IN CONCRETE & STRUCTURES, 2011, http://cipremier.com/100036006
  37. Hesam, M., Alireza, B., and Tayebeh, P., "The pozzolanic reactivity of monodispersed nanosilica hydrosols and their influence on the hydration characteristics of Portland cement," Cement and Concrete Research, Vol. 42, 2012, pp. 1563-1570. https://doi.org/10.1016/j.cemconres.2012.09.004
  38. Liu, R. G., Han, F. H., and Yan, P. Y., "Characteristics of two types of C-S-H gel in hardened complex binder pastes blended with slag," Science China Technological Sciences, Vol. 56, No. 6, 2013, pp. 1359-1402
  39. Shi, C., Krivenko, P. V., and Roy, D., Alkali-activated cement and concretes, Taylor & Francis, New York, 2006, 376pp.
  40. Hogan, F. J. and Meusel, J. W., "Evaluation for durability and strength development of a ground granulated blast furnace slag," Cement, Concrete and Aggregate, Vol. 3, No. 1, 1981, pp. 40-52. https://doi.org/10.1520/CCA10201J
  41. Oner, A. and Akyuz, S., "An experimental study on optimum usage of GGBS for the compressive strength of concrete,"Cement and Concrete Composites, Vol. 29, No. 6, 2007, pp. 505-514. https://doi.org/10.1016/j.cemconcomp.2007.01.001
  42. McNally, C. and Sheils, E., "Probability-based assessment of the durability characteristics of concretes manufactured using CEM II and GGBS binders," Construction and Building Materials, Vol. 30, 2012, pp. 22-29. https://doi.org/10.1016/j.conbuildmat.2011.11.029
  43. Oey, T., Kumar, A., Bullard, J. W., and Neithalath, N., "The filler effect : The lnfluence of filler content and surface area on cementitious reaction rates," Journal of the American Ceramic Society, Vol. 96, No. 6, 2013, pp. 1978-1990 https://doi.org/10.1111/jace.12264
  44. Ramezanianpour, A. A. and Malhotra, V. M., "Effect of curing on the compressive strength, resistance to chloride-ion penetration and porosity of concretes incorporating slag, fly ash or silica fume," Cement and Concrete Composites, Vol. 17, 1995, pp. 125-133. https://doi.org/10.1016/0958-9465(95)00005-W

피인용 문헌

  1. Effects of Limestone Powder and Silica Fume on the Hydration and Pozzolanic Reaction of High-Strength High-Volume GGBFS Blended Cement Mortars vol.27, pp.2, 2015, https://doi.org/10.4334/JKCI.2015.27.2.127
  2. Strength Development and Durability of High-Strength High-Volume GGBFS Concrete vol.3, pp.3, 2015, https://doi.org/10.14190/JRCR.2015.3.3.261
  3. on Early Strength of High Volume Slag Cement vol.28, pp.3, 2016, https://doi.org/10.4334/JKCI.2016.28.3.349
  4. Evaluating Strength Development and Durability of High-Strength Concrete with 60% of Ground-Granulated Blast Furnace Slag vol.18, pp.7, 2018, https://doi.org/10.9798/KOSHAM.2018.18.7.307