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The effect of fly ash/slag on the property of reactive powder mortar designed by using Fuller's ideal curve and error function

  • Hwang, C.L. (Department of Construction Engineering, National Taiwan University of Science and Technology) ;
  • Hsieh, S.L. (Department of Civil Engineering, National Taiwan University of Science and Technology, Nanya Institute of Technology)
  • Received : 2007.01.09
  • Accepted : 2007.11.30
  • Published : 2007.12.25

Abstract

This study is mainly focused on applying Fuller's ideal gradation curve to theoretically design blended ratio of all solid materials of a reactive powder mortar (RPM), also known as reactive powder concrete (RPC), with the aid of error function, and then to study the effect of fly ash/slag on the performance of RPM. The solid particle is assumed to be spherical particles. Then, the void volume of paste ($V_{\nu}$) and the paste content with specific quality can be obtained. As conclusion, under Fuller's ideal grading curve, the amount of fly ash/slag mixture is higher than that with silica fume along due to it better filled the void within solid particle and obtains higher packing density.

Keywords

References

  1. Chan, Y.-W. and Chu, S.-H. (2004), "Effect of silica fume on steel fiber bond characteristics in reactive powder concrete", Cement Concrete Res., 34(7), 1167-1172. https://doi.org/10.1016/j.cemconres.2003.12.023
  2. Chang, T. P., Ling, C. Y., Hwang, C. L. and Wang, Y. F. (1995), "The influence of steel fiber and silica fume on the properties of cold-bond fly ash aggregate high strength concrete", J. Chinese Institute of Civil and Hydraulic Eng., 7(3), 379-385.
  3. Chen, Y. Y. and Hwang, C. L. (2001), "Study on electrical resistivity and chloride ion penetrability behavior of concrete materials", J. Chinese Civil and Hydraulic Eng., 13(2), 293-302.
  4. Feret, R. (1936), Sur la Compactite des Mortiers Hydauliques, Le Genie Civil.
  5. Feylessoufi, A., Villieras, F., Micho, L. J., Cases, J. M. and Richard, P. (1996), "Water environment and nanostructural network in a reactive powder concrete", Cement Concrete Res., 18.
  6. Fuller, W. B. and Thompson, J. E. (1926), "The laws of proportioning concrete", A.S.C.E. Transactions, LIX, 67-172.
  7. Hwang, C. L. (2003), The Theory and Practice of High Performance Concrete, Jane's Book Publisher Co., Taiwan.
  8. Hwang, C. L. and Chen, Y. Y. (2002), "The property of self-consolidating concrete designed by densified mixture design algorithm", The Proceedings of First North American Conference On The Design And Use of Self-Consolidating Concrete, ACBM, 121-126.
  9. Hwang, C. L. and Jann, I. J. (1998), "Importance of water to solid ratio (W/S) for Concrete properties, international symposium on high-performance and reactive powder concretes", Sherbrooke, Canada, 371-382.
  10. Hwang, C. L. and Jann, I. J. (1998), "Replacement policy of fly ash in paste, mortar and HPC", Sixth CANMET/ACI International Conference on Fly Ash, Silica Fume, Slag and Natural Pozzolans in Concrete, Bangkok, Thailand, 161-176.
  11. Hwang, C. L., Liu, J. J., Lee, L. S. and Lin, F. Y. (1996), "Densified mixture design algorithm and early properties of high performance concrete", J. Chinese and Hydraulic Eng., 8(2), 207-219.
  12. Lee, L. S. an Hwang, C. L. (2002), "A quality assurance system of SCC in Taiwan", The Proceedings of First North American Conference on the Design and Use of Consolidating Concrete, ACBM, 275-280.
  13. Lee, M.-G., Wang, Y.-C. and Chiu, C.-T. (2005), "A preliminary study of reactive powder concrete as a new repair material", Construction and Building Material, Available on line 19.
  14. Matte, V. and Moranville, M. (1999), "Durability of reactive powder composites: Influence of silica fume on the leaching properties of very low water/binder pastes", Cement Concrete Res., 21(1), 1-9(9).
  15. Matte, V., Moranville, M., Adenot, F., Rchet, C. and Torrenti, J. M. (2000), "Simulated microstructure and transport properties of ultra-high performance cement-based materials", Cement Concrete Res., 30(12), 1947-1954. https://doi.org/10.1016/S0008-8846(00)00288-X
  16. Mora, C. F., Kwan, A. K. H. and Chan, H. C. (1998) "Particle size distribution analysis of coarse aggregate using digital image processing", Cement Concrete Res., 28(6), 92-93.
  17. Philippot, S., Korb, J. P., Peiit, D. and Zanni, H. (1998), "Analysis of microporosity and setting of reactive powder concrete by proton nuclear relaxation", Magnetic Resonance Imaging, 16(5/6), Contributed Paper.
  18. Richard, P. and Cheyrezy, M. (1995), "Composition of reactive powder concrete", Cement Concrete Res., 25(7), 1501-1511. https://doi.org/10.1016/0008-8846(95)00144-2
  19. Shakhmenko, G. and Birsh, J. (1998), "Concrete mix design and optimization", PhD Symposium in Civil Engineering, Budapest.

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