DOI QR코드

DOI QR Code

Development of high performance hybrid fiber reinforced concrete using different fine aggregates

  • Gupta, Hitesh (Department of Civil Engineering, Thapar Institute of Engineering and Technology) ;
  • Bansal, Prem Pal (Department of Civil Engineering, Thapar Institute of Engineering and Technology) ;
  • Sharma, Raju (Department of Civil Engineering, Thapar Institute of Engineering and Technology)
  • 투고 : 2019.10.09
  • 심사 : 2020.11.27
  • 발행 : 2021.01.25

초록

In the present experimental study, the high performance hybrid fiber reinforced concrete (HPHFRC) is prepared using the Modified Andreasen and Andersen (A&A) particle packing model. Total of 16 trial mixes of HPHFRC with Indian standard sand (SS) and natural river sand (NS) are prepared to achieve the selection criteria (flow percent>150 and compressive strength>80 MPa). Based on the flow percent and compressive strength criteria, the selected mixes evaluated to study the effect of usage of natural river sand (NS) and the expensive Indian standard sand (SS) on the mechanical, durability, and microstructure property of designed HPHFRC. It has been found that the Modified A&A model is reliable to design the mix for HPHFRC with excellent mechanical, durability, and microstructure properties. In addition to that, a moderate difference in the mechanical and durability properties of NS contained HPHFRC and SS contained HPHFRC is found. Based on the obtained results of NS contained HPHFRC, it can be concluded that the use of natural river sand (NS) can be successfully adopted for the production of HPHFRC, resulted in a reduction of the production cost without compromising the excellent performance of HPHFRC.

키워드

참고문헌

  1. ACI 211.1 (1991), Standard Practice for Selecting Proportions for Normal, Heavyweight, and Mass Concrete, American Concrete Institute, Farmington Hills, MI, USA.
  2. ACI 211.4R, Guide for Selecting Proportions for High-Strength Concrete Using Portland Cement& Other Cementitious Material, American Concrete Institute, Farmington Hills, MI, USA.
  3. ACI 363R (1998), Guide to Quality Control and Testing of High-Strength Concrete, American Concrete Institute Farmington Hills, MI, USA.
  4. Aitcin, P.C. (1988), High Performance Concrete, E & FN Spon, London.
  5. Anandaraj, S., Rooby, J., Awoyera, P.O. and Gobinath, R. (2019), "Structural distress in glass fibre-reinforced concrete under loading and exposure to aggressive environments", Constr. Build. Mater., 197, 862-870. https://doi.org/10.1016/j.conbuildmat.2018.06.090.
  6. Andreasen, A.H.M. and Andersen, J. (1930), "Uber die Beziehungen zwischen Kornabstufungen und Zwischen raum in ProduktenauslosenKornern (miteinigenExperimenten)", Kolloid Z., 50, 217-228. (in German) https://doi.org/10.1007/BF01422986
  7. ASTM C1202-12 (2012), Standard Test Method for Electrical Indication of Concrete's Ability to Resist Chloride Ion Penetration, American Society of Testing and Material.
  8. ASTM C1437 (2015), Standard Test Method for Flow of Hydraulic Cement Mortar, American Society of Testing and Material.
  9. ASTM C1585-04 (2004), Standard Test Method for Measurement of Rate of Absorption of Water by Hydraulic-Cement Concretes, American Society of Testing and Material.
  10. Bindiganavile, V. and Banthia, N. (2001), "Polymer and steel fiber-reinforced cementitious composites under impact loading-Part 1: Bond-slip response", Mater. J., 98(1), 10-16.
  11. BIS 5816 (1999), Method of Test Splitting Tensile Strength of Concrete (CED 2: Cement and Concrete), Bureau of Indian Standards, New Delhi, India.
  12. BIS 650 (1991), Standard Sand for Testing Cement Specification, Bureau of Indian Standards, New Delhi, India.
  13. Boulekbache, B., Hamrat, M., Chemrouk, M. and Amziane, S. (2015), "Failure mechanism of fibre reinforced concrete under splitting test using digital image correlation", Mater. Struct., 48(8), 2713-2726. https://doi.org/10.1617/s11527-014-0348-x.
  14. Dadmand, B., Pourbaba, M., Sadaghian, H. and Mirmiran, A. (2020), "Effectiveness of steel fibers in ultra-high-performance fiber-reinforced concrete construction", Adv. Concrete Constr., 10(3), 195-209. https://doi.org/10.12989/acc.2020.10.3.195.
  15. De Larrard, F. and Sedran, T. (1994), "Optimization of ultra-highperformance concrete by the use of a packing model", Cement Concrete Res., 24(6), 997-1009. https://doi.org/10.1016/0008-8846(94)90022-1.
  16. De Larrard, F. and Sedran, T. (2002), "Mixture-proportioning of high-performance concrete", Cement Concrete Res., 32(11), 1699-1704. https://doi.org/10.1016/S0008-8846(02)00861-X.
  17. Du, H. and Dai Pang, S. (2020), "High-performance concrete incorporating calcined kaolin clay and limestone as cement substitute", Constr. Build. Mater., 264, 120152. https://doi.org/10.1016/j.conbuildmat.2020.120152.
  18. Fuller, W.B. and Thompson, S.E. (1907), "The laws of proportioning concrete", Tran. Am. Soc. Civil Eng., 59, 67-14. https://doi.org/10.1061/TACEAT.0001979
  19. Funk, J.E. and Dinger, D.R. (2013), Predictive Process Control of Crowded Particulate Suspensions: Applied to Ceramic Manufacturing, Springer Science & Business Media.
  20. Ganesan, N., Indira, P.V. and Sabeena, M.V. (2014), "Behaviour of hybrid fibre reinforced concrete beam-column joints under reverse cyclic loads", Mater. Des., 54, 686-693, https://doi.org/10.1016/j.matdes.2013.08.076.
  21. Graybeal, B.A. (2006), "Material property characterization of ultra-high performance concrete", No. FHWA-HRT-06-103.
  22. Grunewald, S. (2004), "Performance-based design of selfcompacting fibre reinforced concrete", Ph.D. Dissertation, Delft University of Technology, Netherlands.
  23. Guneyisi, E., Gesoglu, M. and Algin, Z. (2013), "Performance of self-compacting concrete (SCC) with high-volume supplementary cementitious materials (SCMs)", Eco-Efficient Concrete, Woodhead Publishing, 198-217.
  24. Hassan, K.E., Cabrera, J.G. and Maliehe, R.S. (2000), "The effect of mineral admixtures on the properties of high-performance concrete", Cement Concrete Compos., 22(4), 267-271. https://doi.org/10.1016/S0958-9465(00)00031-7.
  25. IS 4031-6 (1988), Methods of Physical Tests for Hydraulic Cement, Part 6: Determination of Compressive Strength of Hydraulic Cement (other than masonry cement), (Bureau of Indian Standards), New Delhi.
  26. Khaloo, A.R., Karimi, H., Asadollahi, S. and Dehestani, M. (2017), "A new mixture design method for ultra-high-strength concrete", ACI Mater. J., 114(2), 215-224.
  27. Kumar, V.V.P. and Prasad, D.R. (2019), "Influence of supplementary cementitious materials on strength and durability characteristics of concrete", Adv. Concrete Constr., 7(2), 75-85. http://dx.doi.org/10.12989/acc.2019.7.2.075.
  28. Kwon, S., Nishiwaki, T., Kikuta, T. and Mishashi, H. (2013), "Tensile behavior of ultra high performance hybrid fiber reinforced cement-based composites", Proceedings of an International Conference, Framcos-8, Toledo, Spain, March, 1309-1314.
  29. Kwon. S., Nishiwaki. T., Kikuta. T., Mihashi, H. (2014) "Development of ultra-high-performance hybrid fiber-reinforced cement-based composites", ACI Mater. J., 111, 309-318.
  30. Leung, C. (2001), Concrete as a Building Naterial, Article in Encyclopedia of Materials Science and Technology.
  31. Limantono, H., Ekaputri, J J. and Susanto, T.E. (2016), "Effect of silica fume and glass powder on high-strength paste", Key Eng. Mater., 673, 37-46. https://doi.org/10.4028/www.scientific.net/KEM.673.37.
  32. Mehta, P.K. (1991), Structure, Properties and Materials of Concrete, Translated from English by Zhu Yongnian et al., Tongji University Press, Shanghai. (in Chinese)
  33. Mueller, H.S. and Haist, M. (2009), FIB, Structural Concrete, Text Book on Behaviour, Design and Performance-Updated Knowledge of the CEB/FIP Model Code 1990, fib Bulletin, 1, 35-95.
  34. Rossi, P. (1987) "High performance multimodal fiber reinforced cement composite (HPMFRCC): The LCPC experience", ACI Mater. J., 94(6), 478-483.
  35. Salimi, J., Ramezanianpour, A.M. and Moradi, M.J. (2020), "Studying the effect of low reactivity metakaolin on free and restrained shrinkage of high performance concrete", J. Build. Eng., 28, 101053. https://doi.org/10.1016/j.jobe.2019.101053.
  36. Samad, S. and Shah, A. (2017), "Role of binary cement including supplementary cementitious material (SCM), in production of environmentally sustainable concrete: A critical review", Int. J. Sustain. Built Envir., 6(2), 663-674. https://doi.org/10.1016/j.ijsbe.2017.07.003.
  37. Scheinherrova, L., Fort, J., Pavlik, Z. and Cerny, R. (2017), "Simultaneous thermal analysis and thermodilatometry of hybrid fiber reinforced UHPC", AIP Conference Proceedings, 1866(1), 040033. https://doi.org/10.1063/1.4994513.
  38. Sharma, R. and Bansal, P.P. (2019), "Behavior of RC beam column joint retrofitted using UHP-HFRC", Constr. Build. Mater., 195, 376-389. https://doi.org/10.1016/j.conbuildmat.2018.11.052.
  39. Sharma, R. and Bansal, P.P. (2019), "Efficacy of supplementary cementitious material and hybrid fiber to develop the ultra high performance hybrid fiber reinforced concrete", Adv. Concrete Constr., 8(1), 21-31. https://doi.org/10.12989/acc.2019.8.1.021.
  40. Shen, D., Liu, X., Zeng, X., Zhao, X. and Jiang, G. (2020), "Effect of polypropylene plastic fibers length on cracking resistance of high performance concrete at early age", Constr. Build. Mater., 244, 117874. https://doi.org/10.1016/j.conbuildmat.2019.117874.
  41. Shui, Z., Xuan, D., Wan, H. and Cao, B. (2008), "Rehydration reactivity of recycled mortar from concrete waste experienced to thermal treatment", Constr. Build. Mater., 22(8), 1723-1729. https://doi.org/10.1016/j.conbuildmat.2007.05.012.
  42. Siddique, S. Shrivastava, S. and Chaudhary, S. (2018), "Evaluating resistance of fine bone china ceramic aggregate concrete to sulphate attack", Constr. Build. Mater., 186, 826-832. https://doi.org/10.1016/j.conbuildmat.2018.07.138.
  43. Sing, S., Khan, S., Khandelwal, R., Chug, A. and Nagar, R. (2016), "Performance of sustainable concrete containing granite cutting waste", J. Clean. Prod., 119, 86-98. https://doi.org/10.1016/j.jclepro.2016.02.008.
  44. Struble, L., Skalny, J. and Mindess, S. (1980), "A review of the cement-aggregate bond", Cement Concrete Res., 10(2), 277-286. https://doi.org/10.1016/0008-8846(80)90084-8.
  45. Trnik, A., Fort, J., Pavlikova, M., Cachova, M., Citek, D., Kolisko, J. and Pavlik, Z. (2016), "UHPFRC at high temperaturessimultaneous thermal analysis and thermodilatometry", AIP Conference Proceedings, 1752(1), 040028, https://doi.org/10.1063/1.4955259.
  46. Walraven, J.C. (2009), "High performance fiber reinforced concrete: progress in knowledge and design codes", Mater. Struct., 42(9), 1247. https://doi.org/10.1617/s11527-009-9538-3.
  47. Wu, H. (2006), Advanced Civil Infrastructure Materials: Science, Mechanics and Applications, Woodhead Publishing.
  48. Xincheng, P. (2013), Super-High-Strength High Performance Concrete, CRC Press, Tylor and Francis.
  49. Yu, R., Spiesz, P. and Brouwers H.J.H. (2015), "Development of ultra-high performance fibre reinforced concrete (UHPFRC): towards an efficient utilization of binders and fibres", Constr. Build. Mater., 79, 273-282. https://doi.org/10.1016/j.conbuildmat.2015.01.050.
  50. Yu, R., Spiesz, P. and Brouwers, H.J.H. (2014), "Mix design and properties assessment of ultra-high performance fibre reinforced concrete (UHPFRC)", Cement Concrete Res., 56, 29-39. https://doi.org/10.1016/j.cemconres.2013.11.002.
  51. Yu, R., Tang, P., Spiesz, P. and Brouwers, H.J.H. (2014), "A study of multiple effects of nano-silica and hybrid fibers on the properties of ultra-high performance fiber reinforced concrete (UHPFRC) incorporating waste bottom ash (WBA)", Constr. Build. Mater., 60, 98-110. https://doi.org/10.1016/j.conbuildmat.2014.02.