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Articles

Experimental investigation of the effect of Micro Silica on roller compacted concrete pavement made of recycled asphalt pavement materials

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Pages 1353-1367 | Received 04 Mar 2020, Accepted 21 Jul 2020, Published online: 11 Aug 2020

References

  • Abut, Y. and Yildirim, S.T., 2017. Structural design and economic evaluation of roller compacted concrete pavement with recycled aggregates. In IOP Conference Series: Materials Science and Engineering (Vol. 245, No. 2, p. 022064). IOP Publishing.
  • ACI 318-14, Building Code Requirements for Structural Concrete and Commentary, ACI Committee, vol. 318, American Concrete Institute, Farmington Hills, MI, USA, 2014, p. 316.
  • ACI 325.10. State of art Report on Roller Compacted Concrete Pavements. American Concrete Institute report ACI 325.10-95, R2001.
  • Ahmed, M., Dad, K.M., and Wamiq, M., 2008. Effect of concrete cracking on the lateral response of RCC buildings.
  • Al-Abdul Wahhab, H.I. and Asi, I.M., 1994. Optimization of roller-compacted concrete for local application. Transportation Research Record, (1458), 1–7.
  • American Society for Testing and Materials (ASTM D2172/D2172M-11). Standard Test Methods for Quantitative Extraction of Bitumen from Bituminous Paving Mixtures.
  • ASTM, 2010. Standard test method for flexural strength of concrete (using simple beam with third-point loading). C78/C78M-10, West Conshohocken, PA.
  • ASTM, 2011. Standard test method for splitting tensile strength of cylindrical concrete specimens. ASTM C496, West Conshohocken, PA.
  • ASTM C1240. Standard specification for silica fume used in cementitious mixtures.
  • ASTM C1435, 2008. Standard practice for molding roller-compacted concrete in cylinder molds using a vibrating hammer, C1435/C1435M-08. p. 1–5. https://doi.org/https://doi.org/10.1520/C1435.
  • ASTM C33/C33M-16e1, Standard specification for concrete aggregates, ASTM International, West Conshohocken, PA, 2016.
  • ASTM C39 / C39M-18, 2018. Standard test method for compressive strength of cylindrical concrete specimens, ASTM International, West Conshohocken, PA.
  • ASTM D1557, 2002. Standard test methods for laboratory compaction characteristics of soil using modified effort. American Society for Testing and Materials, West Conshohocken, PA.
  • ASTM standards. C171. 1994. Standard specification for sheet materials for curing concrete.
  • Brand, A.S. and Roesler, J.R., 2015. Ternary concrete with fractionated reclaimed asphalt pavement. ACI Materials Journal, 112 (1), 155–163.
  • Brand, A.S. and Roesler, J.R., 2016. Expansive and concrete properties of SFS–FRAP aggregates. Journal of Materials in Civil Engineering, 28 (2), 04015126.
  • Brand, A.S. and Roesler, J.R., 2017a. Bonding in cementitious materials with asphalt-coated particles: Part II – cement-asphalt chemical interactions. Construction and Building Materials, 130, 182–192.
  • Brand, A.S. and Roesler, J.R., 2017b. Bonding in cementitious materials with asphalt-coated particles: Part I – the interfacial transition zone. Construction and Building Materials, 130, 171–181.
  • Chi, M. and Huang, R., 2014. Effect of circulating fluidized bed combustion ash on the properties of roller compacted concrete. Cement and Concrete Composites, 45, 148–156. https://doi.org/http://dx.doi.org/10.1016/j.cemconcomp.2013.10.001.
  • Debbarma, S., et al., 2020. Utilization of industrial and agricultural wastes for productions of sustainable roller compacted concrete pavement mixes containing reclaimed asphalt pavement aggregates. Resources, Conservation and Recycling, 152, 104504.
  • Debbarma, S., Ransinchung, G.D., and Singh, S., 2019a. Feasibility of roller compacted concrete pavement containing different fractions of reclaimed asphalt pavement. Construction and Building Materials, 199, 508–525.
  • Debbarma, S., Ransinchung, G.D., and Singh, S., 2019b. Suitability of various supplementary cementitious admixtures for RAP inclusive RCCP mixes. International Journal of Pavement Engineering, 1–14.
  • Erdem, S. and Blankson, M.A., 2014. Environmental performance and mechanical analysis of concrete containing recycled asphalt pavement (RAP) and waste precast concrete as aggregate. Journal of Hazardous Materials, 264, 403–410.
  • Ergün, A., 2011. Effects of the usage of diatomite and waste marble powder as partial replacement of cement on the mechanical properties of concrete. Construction and Building Materials, 25 (2), 806–812.
  • Ergün, A., et al., 2013. The effect of cement dosage on mechanical properties of concrete exposed to high temperatures. Fire Safety Journal, 55, 160–167.
  • Fakhri, M., et al., 2017b. Determining optimal combination of roller compacted concrete pavement mixture containing recycled asphalt pavement and crumb rubber using hybrid artificial neural network–genetic algorithm method considering energy absorbency approach. Canadian Journal of Civil Engineering, 44 (11), 945–955.
  • Fakhri, M. and Amoosoltani, E., 2017a. The effect of reclaimed asphalt pavement and crumb rubber on mechanical properties of roller compacted concrete pavement. Construction and Building Materials, 137, 470–484.
  • Fakhri, M. and Saberi, F., 2016. The effect of waste rubber particles and silica fume on the mechanical properties of roller compacted concrete pavement. Journal of Cleaner Production, 129, 521–530.
  • Ganjian, E., Jalull, G., and Sadeghi-Pouya, H., 2015. Using waste materials and by-products to produce concrete paving blocks. Construction and Building Materials, 77, 270–275.
  • Harrington, D., et al., 2010. Guide for roller-compacted concrete pavements. InTrans Project Reports, 102. https://lib.dr.iastate.edu/intrans_reports/102.
  • Hesami, S., Ahmadi, S., and Nematzadeh, M., 2014. Effects of rice husk ash and fiber on mechanical properties of pervious concrete pavement. Construction and Building Materials, 53, 680–691. https://doi.org/http://dx.doi.org/10.1016/j.conbuildmat.2013.11.070.
  • Huang, B., Shu, X., and Burdette, E.G. 2006. Mechanical properties of concrete containing recycled asphalt pavements. Magazine of Concrete Research, 58 (5), 313–320.
  • Huang, B., Shu, X., and Li, G., 2005. Laboratory investigation of Portland Cement concrete containing recycled asphalt pavements. Cement and Concrete Research, 35 (10), 2008–2013.
  • Ibrahim, A., et al., 2014. Fresh, mechanical, and durability characteristics of self-consolidating concrete incorporating recycled asphalt pavements. Journal of Materials in Civil Engineering, 26 (4), 668–675.
  • Khan, M.I. and Siddique, R., 2011. Utilization of silica fume in concrete: Review of durability properties. Resources, Conservation and Recycling, 57, 30–35.
  • Kumari, M., Ransinchung, G.D., and Singh, S., 2018. A laboratory investigation on Dense Bituminous Macadam containing different fractions of coarse and fine RAP. Construction and Building Materials, 191, 655–666.
  • Kwon, E., et al., 2015. A study on development of recycled cement made from waste cementitious powder. Construction and Building Materials, 83, 174–180.
  • Lam, M.N.T., Le, D.H., and Jaritngam, S., 2018. Compressive strength and durability properties of roller-compacted concrete pavement containing electric arc furnace slag aggregate and fly ash. Construction and Building Materials, 191, 912–922.
  • Li, G., et al., 2010. Properties of polymer modified steel fiber-reinforced cement concretes. Construction and Building Materials, 24 (7), 1201–1206.
  • Madani, H., et al., 2014. Chloride penetration and electrical resistivity of concretes containing nanosilica hydrosols with different specific surface areas. Cement and Concrete Composites, 53, 18–24. https://doi.org/http://dx.doi.org/10.1016/j.cemconcomp.2014.06.006.
  • Mirbaha, B., et al., 2017. Experimental determination of the optimum percentage of asphalt mixtures reinforced with Nano-carbon black and polyester fiber industries. Engineering Solid Mechanics, 5 (4), 285–292.
  • Mirvalad, S. and Nokken, M., 2015. Minimum SCM requirements in mixtures containing limestone cement to control thaumasite sulfate attack. Construction and Building Materials, 84, 19–29.
  • Mo, L., et al., 2015. Deformation and mechanical properties of quaternary blended cements containing ground granulated blast furnace slag, fly ash and magnesia. Cement and Concrete Research, 71, 7–13.
  • Modarres, A. and Hosseini, Z., 2014. Mechanical properties of roller compacted concrete containing rice husk ash with original and recycled asphalt pavement material. Materials & Design, 64, 227–236.
  • Mueller, P.E., 1990. Roller compacted concrete pavement – state of the art. Report number: FHWA-AZ88-832. Tempe, AZ: Arizona Department of Transportation, Federal Highway Administration.
  • Nikbin, I.M., et al., 2014. A comprehensive investigation into the effect of water to cement ratio and powder content on mechanical properties of self-compacting concrete. Construction and Building Materials, 57, 69–80. https://doi.org/http://dx.doi.org/10.1016/j.conbuildmat.2014.01.098.
  • Okafor, F.O., 2010. Performance of recycled asphalt pavement as coarse aggregate in concrete. Leonardo Electronic Journal of Practices and Technologies, 17 (9), 47–58.
  • Pearson, K., 1896. VII. Mathematical contributions to the theory of evolution.—III. Regression, heredity, and panmixia. Philosophical Transactions of the Royal Society of London. Series A, Containing Papers of a Mathematical or Physical Character, 187, 253–318.
  • Portland Cement Association, 2004. Guide specification for the construction of roller compacted concrete pavements. Skokie, IL: PCA.
  • Rahman, M.E., et al., 2014. Self compacting concrete from uncontrolled burning of rice husk and blended fine aggregate. Materials & Design, 55, 410–415.
  • Ramezanianpour, A.A., 2014. Cement replacement materials. Berlin: Springer. https://doi.org/http://dx.doi.org/10.1007/978-3-642-36721-2.
  • Ribeiro, A.B. and De Almeida, I.R., 2000. Study on high performance roller compacted concrete. Materials and Structures, 33 (6), 398–402.
  • Settari, C., et al., 2015. Assessing the effects of recycled asphalt pavement materials on the performance of roller compacted concrete. Construction and Building Materials, 101, 617–621.
  • Shafigh, P., et al., 2013. Engineering properties of oil palm shell lightweight concrete containing fly ash. Materials & Design, 49, 613–621. .
  • Shi, X., Mukhopadhyay, A., and Liu, K.W., 2017. Mix design formulation and evaluation of Portland cement concrete paving mixtures containing reclaimed asphalt pavement. Construction and Building Materials, 152, 756–768.
  • Shi, X., Mukhopadhyay, A., and Zollinger, D., 2018a. Sustainability assessment for Portland cement concrete pavement containing reclaimed asphalt pavement aggregates. Journal of Cleaner Production, 192, 569–581.
  • Shi, X., Zollinger, D., and Mukhopadhyay, A., 2018b. Punchout study for continuously reinforced concrete pavement containing reclaimed asphalt pavement using pavement ME models. International Journal of Pavement Engineering, 1–14. doi:https://doi.org/10.1080/10298436.2018.1533134.
  • Siddique, R., 2011. Utilization of silica fume in concrete: review of hardened properties. Resources, Conservation and Recycling, 55 (11), 923–932.
  • Singh, S. and Ransinchung, G.D., 2018. Durability properties of pavement quality concrete containing fine RAP. Advances in Civil Engineering Materials, 7 (1), 271–290.
  • Singh, S., Ransinchung, G.D., and Debbarma, S., 2018a. Utilization of reclaimed asphalt pavement aggregates containing waste from sugar-cane Mill for production of concrete mixes. Journal of Cleaner Production, 174, 42–52.
  • Singh, S., Ransinchung, G.D., and Kumar, P., 2017a. An economical processing technique to improve RAP inclusive concrete properties. Construction and Building Materials, 148, 734–747.
  • Singh, S., Ransinchung, G.D., and Kumar, P., 2017b. Effect of mineral admixtures on fresh, mechanical and durability properties of RAP inclusive concrete. Construction and Building Materials, 156, 19–27.
  • Singh, S., Ransinchung, G.D., and Kumar, P., 2017c. Feasibility study of RAP aggregates in cement concrete pavements. Road Materials and Pavement Design, 20 (1), 151–170. doi:https://doi.org/10.1080/14680629.2017.1380071.
  • Singh, S., Ransinchung, G.D., and Kumar, P., 2018b. Laboratory investigation of concrete pavements containing fine RAP aggregates. Journal of Materials in Civil Engineering, 30 (2), 04017279. doi:https://doi.org/10.1061/(ASCE)MT.1943-5533.0002124.
  • Singh, S., Ransinchung, G.D., and Monu, K., 2019b. Sustainable lean concrete mixes containing wastes originating from roads and industries. Construction and Building Materials, 209, 619–630.
  • Vahedifard, F., Nili, M., and Meehan, C.L., 2010. Assessing the effects of supplementary cementitious materials on the performance of low-cement roller compacted concrete pavement. Construction and Building Materials, 24 (12), 2528–2535.
  • Yerramala, A., and Babu, K.G., 2011. Transport properties of high volume fly ash roller compacted concrete. Cement and Concrete Composites, 33 (10), 1057–1062.
  • Zahedi, M., et al., 2020. Experimental determination of the optimum percentage of asphalt mixtures reinforced with Lignin. SN Applied Sciences, 2 (2), 258.
  • Zahedi, M., Barati, M., and Zarei, M., 2017. Evaluation the effect of carbon nanotube on the rheological and mechanical properties of bitumen and Hot Mix Asphalt (HMA). Electronic Journal of Structural Engineering, 17 (1), 76–84.
  • Zarei, M., et al., 2020a. Technical, economic, and environmental investigation of the effects of rubber powder additive on asphalt mixtures. Journal of Transportation Engineering, Part B: Pavements, 146 (1), 04019039.
  • Zarei, M., et al., 2020b. Application of concordance analysis method (CA) for optimal selection of asphalt mixtures reinforced with rubber powder and carbon fibre. Electronic Journal of Structural Engineering, 19 (1), 1–12.
  • Zarei, M., et al., 2020c. Economical and technical study on the effect of carbon fiber with high strength on Hot Mix Asphalt (HMA). Electronic Journal of Structural Engineering, 20, 1.
  • Zarei, A., Zarei, M., and Janmohammadi, O., 2019. Evaluation of the effect of lignin and glass fiber on the technical properties of asphalt mixtures. Arabian Journal for Science and Engineering, 44 (5), 4085–4094.
  • Zdiri, M., Ben Ouezdou, M., and Neji, J., 2008. Theoretical and experimental study of roller-compacted concrete strength. Magazine of Concrete Research, 60 (7), 469–474. https://doi.org/http://dx.doi.org/10.1680/macr.2007.00002.

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