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{"title":"Using Waste Marbles in Self Compacting Lightweight Concrete","authors":"Z. Funda T\u00fcrkmeno\u011flu, Mehmet T\u00fcrkmenoglu, Demet Yavuz, ","volume":120,"journal":"International Journal of Civil and Environmental Engineering","pagesStart":1636,"pagesEnd":1640,"ISSN":"1307-6892","URL":"https:\/\/publications.waset.org\/pdf\/10006098","abstract":"<p>In this study, the effects of waste marbles as aggregate material on workability and hardened concrete characteristics of self compacting lightweight concrete are investigated. For this purpose, self compacting light weight concrete are produced by waste marble aggregates are replaced with fine aggregate at 5%, 7.5%, and 10% ratios. Fresh concrete properties, slump flow, T<sub>50<\/sub> time, V funnel, compressive strength and ultrasonic pulse velocity of self compacting lightweight concrete are determined. It is concluded from the test results that using waste marbles as aggregate material by replacement with fine aggregate slightly affects fresh and hardened concrete characteristics of self compacting lightweight concretes.<\/p>\r\n","references":"[1]\tH.Y. Wang and C.C., Lin, \u201cA study of fresh and engineering properties of self-compacting high slag concrete (SCHSC),\u201d vol. 42, pp. 132-136, 2013.\r\n[2]\tB. Craeye, G. De Schutter, B. Desmet, J. Vantomme, G. Heirman, and L. Vandewalle, \u201cEffect of mineral filler type on autogenous shrinkage of self-compacting concrete,\u201d Cement Concrete Research, vol. 40, pp. 908\u2013913, 2010.\r\n[3]\tR.D. Swamy, M.K.M.V. Ratnam and U.R. Raju, \u201cEffect of mineral admixture on properties of self compacting concrete,\u201d International Journal for Innovative Research in Science & Technology, vol.1, no. 11, pp. 503-511, April 2015. \r\n[4]\tOkamura H., and Ouchi M., (2003). Self-Compacting Concrete. Journal of Advanced Concrete Technology Vol.1, No 1, pp5-15.\r\n[5]\tM. Ouchi, S. Nakamura, T. Osterberg, S.E. Hallberg and M. Lwin, \u201cApplications of self compacting concrete in Japon, Europe and the United States,\u201d ISHPC, 2003.\r\n[6]\tS.N. Tande and P.B. Mohite, \u201cApplications of self compacting concrete,\u201d 32nd Conference on Our World \u0131n Concrete Structures, 28 - 29 August 2007, Singapore.\r\n[7]\tFunctional classification of lightweight concretes. (1978). RILEM.\r\n[8]\tM. Kaffetzakis, and C.G. Papanicolaou, \u201cBond behavior of reinforcement in lightweight aggregate self-compacting concrete,\u201d Construction and Buildings, vol. 113, pp. 641-652, 2016.\r\n[9]\tC. Ozyildirim, \u201cDurability of structural lightweight concrete,\u201d Concrete Bridge Conference, St Louis, MO, 2008.\r\n[10]\tT. Uygunoglu, I.B. Top\u00e7u, \u201cThermal expansion of self-consolidating normal and lightweight concrete at elevated temperature, \u201cConstruction and Building Materials, vol. 23, pp. 3063-3069, 2009.\r\n[11]\tA. Kumar and R. Prakash, \u201cMechanical properties of structural light weight concrete by blending cinder & LEECA,\u201d International Advanced Research Journal in Science, Engineering and Technology, vol. 2, no. 10, October, 2015.\r\n[12]\tWilson, N.S. 2003. Effect of mositure and porosity on the thermal properties of a conventional refractorty concrete. Journal of the European Seramic Society, 23, 745-755.\r\n[13]\tM. Uysal and K. Y\u0131lmaz, \u201cEffect of mineral admixtures on properties of self-compacting concrete,\u201d Cement Concrete Composites, vol. 33, no. 7, pp. 771-776, August 2011.\r\n[14]\tFMA. Filho, BE. Barrag\u00e1n, JR. Casas and ALHC. El Debs \u201cHardened properties of self compacting concrete \u2013 a statistical approach,\u201d Construction Building Materials, vol. 24, pp. 1608\u20131615, 2013.\r\n[15]\tO. Gencel, C. Ozel, F. K\u00f6ksal, G.M. Barrerae and W. Brostowf \u201cProperties of concrete paving blocks made with waste marble,\u201d Journal of Cleaner Production, Vol 21, No 1, 62-70.\r\n[16]\tT. Uyguno\u011flu, \u0130.B. Top\u00e7u and A.G. \u00c7elik, \u201cUse of waste marble and recycled aggregates in self-compacting concrete for environmental sustainability,\u201d Journal of Cleaner Production, Vol 84, No 1, 691-700.\r\n[17]\tS. Juradin and G. Boloevic, 2012. Experimental Testing of the Effects of Fine Particles on the Properties of the SCC, Advances in Material Science and Engineering.\r\n[18]\tAukour F.J. and Al-Qinna, M.I. 2008. Marble Production and Environmental Constrains: Case Study from Zarqa Governorate, Jordan Journal of Earth and Environmental Sciences, Vol 1, No 1, 11-21.\r\n[19]\tAlyama\u00e7, K.E., and Ince, R., (2009). A preliminary concrete mix design for SCC with marble powders. Construction and Building Materials, 23, 1201-1210.\r\n[20]\tTS EN 197-1 (2005). \u201cCement. Part 1: compositions and conformity criteria for common cements\u201d. Turkish Standards Institutions, Ankara.\r\n[21]\tTS 706 EN 12620 (2009). \u201cAggregates for concrete\u201d. Turkish Standards Institutions, Ankara.\r\n[22]\tTS EN 12350-8 (2011). Testing fresh concrete - Part 8: Self-compacting concrete - Slump-flow test.\r\n[23]\tTS EN 12350-9 (2011). Testing fresh concrete - Part 8: Self-compacting concrete - V funnel test\r\n[24]\tEFNARC. (2005). The European guidelines for self compacting concrete: Specification, production and use. Cambridge, UK: The Self-Compacting Concrete European Project Group.ESCSI. (2004).\r\n[25]\tASTM C597, \u201cStandard Test Method for Pulse Velocity through Concrete\u201d. Standard ASTM C597-83, American Society for Testing Materials, Philadelphia, 2002.\r\n[26]\tTS EN 12390\u20133, \u201cTesting Hardened Concrete \u2013 Part 3: Compressive Strength of Test Specimens\u201d, Turkish Standard, Turkey (in Turkish), 2003.","publisher":"World Academy of Science, Engineering and Technology","index":"Open Science Index 120, 2016"}