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The Compaction of Energy and Properties of Roller-Compacted Concrete Pavement with Fillers


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Aghaeipour, A. –Madhkhan, M. (2020) Mechanical properties and durability of roller compacted concrete pavement (RCCP)–a review. Road Materials and Pavement Design, 21(7), 1775–1798.10.1080/14680629.2019.1579754 Search in Google Scholar

Amer, N. – Storey, C. – Delatte, N. (2004) Roller-compacted concrete mix design procedure with gyratory compactor. Transportation Research Record, 1893(1), 46–52.10.3141/1893-06 Search in Google Scholar

ASTM. (2014). Standard practice for molding roller-compacted concrete in cylinder molds using a vibrating hammer. Search in Google Scholar

Atiş, C D, Sevim, U. K. – Özcan, F.– Bilim, C. – Karahan, O. – Tanrikulu, A. H. – Ekşi, A. (2004) Strength properties of roller compacted concrete containing a non-standard high calcium fly ash. Materials Letters, 58(9), 1446–1450.10.1016/j.matlet.2003.10.007 Search in Google Scholar

Atiş Cengiz Duran. (2005). Strength properties of high-volume fly ash roller compacted and workable concrete, and influence of curing condition. Cement and Concrete Research, 35(6), 1112–1121.10.1016/j.cemconres.2004.07.037 Search in Google Scholar

Chhorn, C.– Lee, S.-W. (2017). Consistency control of roller-compacted concrete for pavement. KSCE Journal of Civil Engineering, 21(5), 1757–1763.10.1007/s12205-016-0820-y Search in Google Scholar

Chi, M.– Huang, R. (2014). Effect of circulating fluidized bed combustion ash on the properties of roller compacted concrete. Cement and Concrete Composites, 45, 148–156.10.1016/j.cemconcomp.2013.10.001 Search in Google Scholar

Ghahari, S. A. – Mohammadi, A. – Ramezanianpour, A. A. (2017). Performance assessment of natural pozzolan roller compacted concrete pavements. Case Studies in Construction Materials, 7, 82–90.10.1016/j.cscm.2017.03.004 Search in Google Scholar

Harrington, D. – Abdo, F. – Adaska, W.– Hazaree, C. V, Ceylan, H. – Bektas, F. (2010). Guide for roller-compacted concrete pavements. Search in Google Scholar

Hazaree, C. – Ceylan, H. – Wang, K. (2011). Influences of mixture composition on properties and freeze–thaw resistance of RCC. Construction and Building Materials, 25(1), 313–319.10.1016/j.conbuildmat.2010.06.023 Search in Google Scholar

Khayat, K. H. – Libre, N. A. (2014). Roller compacted concrete: field evaluation and mixture optimization. Missouri University of Science and Technology. Center for Transportation Infrastructure and Safety, USA. Search in Google Scholar

LaHucik, J. – Roesler, J. (2017). Field and laboratory properties of roller-compacted concrete pavements. Transportation Research Record, 2630(1), 33–40.10.3141/2630-05 Search in Google Scholar

Lam, M. N. T. – Jaritngam, S. – Le, D. H. (2017). Roller-compacted concrete pavement made of Electric Arc Furnace slag aggregate: Mix design and mechanical properties. Construction and Building Materials, 154, 482–495. https://doi.org/10.1016/j.conbuildmat.2017.07.240 Search in Google Scholar

Lin, Y. Q. – Shi, Y. – Guo, D. M., Li, J. Z. – Yang, H. Q. (2011). Study on site construction technology of four-graded RCC. Advanced Materials Research, 250, 2927–2930.10.4028/www.scientific.net/AMR.250-253.2927 Search in Google Scholar

LIU, J. – TIAN, Y. – Liu, Z. (2007). Study on porosity of low-temperature concrete with mineral admixture. Journal of Shenyang Jianzhu University (Natural Science), 4. Search in Google Scholar

Luhr, D. R. (2006). Frost Durability of Roller-Compacted Concrete Pavements: Research Synopsis. Portland Cement Association. Search in Google Scholar

Madhkhan, M. – Azizkhani, R. – Harchegani, M. E. T. (2012). Effects of pozzolans together with steel and polypropylene fibers on mechanical properties of RCC pavements. Construction and Building Materials, 26(1), 102–112.10.1016/j.conbuildmat.2011.05.009 Search in Google Scholar

Neville, A. M., & Brooks, J. J. (1987). Concrete technology. Long-man Scientific & Technical England. Search in Google Scholar

Rahmani, E. – Sharbatdar, M. K. – Beygi, M. H. A. (2020). A comprehensive investigation into the effect of water to cement ratios and cement contents on the physical and mechanical properties of Roller Compacted Concrete Pavement (RCCP). Construction and Building Materials, 253, 119177.10.1016/j.conbuildmat.2020.119177 Search in Google Scholar

Rao, M. – Yang, H. – Lin, Y. – Li, J. – Shi, Y. (2016). Influence of maximum aggregate sizes on the performance of RCC. Construction and Building Materials, 115, 42–47.10.1016/j.conbuildmat.2016.03.172 Search in Google Scholar

Rao, S. K. – Sravana, P. – Rao, T. C. (2016). Abrasion resistance and mechanical properties of Roller Compacted Concrete with GGBS. Construction and Building Materials, 114, 925–933.10.1016/j.conbuildmat.2016.04.004 Search in Google Scholar

Şengün, E. – Alam, B. – Shabani, R. – Yaman, I. O. (2019). The effects of compaction methods and mix parameters on the properties of roller compacted concrete mixtures. Construction and Building Materials, 228, 116807.10.1016/j.conbuildmat.2019.116807 Search in Google Scholar

Shamsaei, M. – Aghayan, I. – & Kazemi, K. A. (2017). Experimental investigation of using cross-linked polyethylene waste as aggregate in roller compacted concrete pavement. Journal of Cleaner Production, 165, 290–297. https://doi.org/10.1016/j.jclepro.2017.07.109 Search in Google Scholar

Shen, L. – Li, Q. – Ge, W. – Xu, S. (2020). The mechanical property and frost resistance of roller compacted concrete by mixing silica fume and limestone powder: Experimental study. Construction and Building Materials, 239, 117882.10.1016/j.conbuildmat.2019.117882 Search in Google Scholar

Tavakoli, D. – Dehkordi, R. S. – Divandari, H. – de Brito, J. (2020). Properties of roller-compacted concrete pavement containing waste aggregates and nano SiO2. Construction and Building Materials, 249, 118747.10.1016/j.conbuildmat.2020.118747 Search in Google Scholar

Vahedifard, F. – Nili, M. – 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), 2528–2535.10.1016/j.conbuildmat.2010.06.003 Search in Google Scholar

Zajac, M. – Rossberg, A. – Le Saout, G.– Lothenbach, B. (2014). Influence of limestone and anhydrite on the hydration of Portland cements. Cement and Concrete Composites, 46, 99–108.10.1016/j.cemconcomp.2013.11.007 Search in Google Scholar

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