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Prediction of Fresh and Hardened Properties of Self-Compacting Heavy-Weight Concrete Using Response Surface Cover

Prediction of Fresh and Hardened Properties of Self-Compacting Heavy-Weight Concrete Using Response Surface

Open Access
|May 2022

References

  1. Akkurt, I., Başyiǧit, C., Akkaş, A., Kilinçarslan, Ş., Mavi, B., & Günoǧlu, K. (2012). Determination of some heavyweight aggregate half value layer thickness used for radiation shielding. Acta Physica Polonica A, 121(1), 138–140. https://doi.org/10.12693/APhysPolA.121.138.
  2. Alyamac, K. E., & Ince, R. (2009). A preliminary concrete mix design for SCC with marble powders. Construction and Building Materials, 23(3), 1201–1210.
  3. Aslani, F., Hamidi, F., Valizadeh, A., & Dang, A. T. N. (2020). High-performance fibre-reinforced heavyweight self-compacting concrete: Analysis of fresh and mechanical properties. Construction and Building Materials, 232, 117230. https://doi.org/10.1016/j.conbuildmat.2019.117230.
  4. ASTM C618. (2019). Standard Specification for Coal Fly Ash and Raw or Calcined Natural Pozzolan for Use in Concrete, ASTM International (ASTM).
  5. Awolusi, T. F., Oke, O. L., Akinkurolere, O. O., & Sojobi, A. O. (2019). Application of response surface methodology: Predicting and optimizing the properties of concrete containing steel fibre extracted from waste tires with limestone powder as filler. Case Studies in Construction Materials, 10, e00212. https://doi.org/10.1016/j.cscm.2018.e00212.
  6. Barbuta, M., & Lepadutu, D. (2008). Mechanical Characteristics Investigation of Polymer Concrete Using Mixture Design of Experiments and Response Surface Method. Journal of Applied Sciences, 8(12), 2242–2249.
  7. Bouzoubaâ, N., & Lachemi, M. (2001). Self-compacting concrete incorporating high volumes of class F fly ash: Preliminary results. Cement and Concrete Research, 31(3), 413–420. https://doi.org/10.1016/S0008-8846(00)00504-4.
  8. Dean, A., Voss, D., & Draguljić, D. (1999). Design and analysis of experiments (Vol. 1). Springer.
  9. Değirmencioğlu, A., & Yazgı, A. (2006). Response Surface Methodology “Theoretical Background for Optimization Based Studies and Implementations in Agricultural Mechanization.” Journal of Agricultural Machinery Science, 2(2), 111–115.
  10. Demirel, B., & Alyamac, K. E. (2018). Waste marble powder/dust. In Waste and Supplementary Cementitious Materials in Concrete: Characterisation, Properties and Applications (pp. 181–197). https://doi.org/10.1016/B978-0-08-102156-9.00006-7.
  11. Design-expert software, Version 10. Inc., S.-E, Minneapolis, MN, USA, 2016. (n.d.). Retrieved from http://www.statease.com/.
  12. Ghalehnovi, M., Roshan, N., Hakak, E., Shamsabadi, E. A., & de Brito, J. (2019). Effect of red mud (bauxite residue) as cement replacement on the properties of self-compacting concrete incorporating various fillers. Journal of Cleaner Production, 240, 118213. https://doi.org/10.1016/j.jclepro.2019.118213.
  13. Hanafiah, Saloma, Victor, & Amalina, K. N. (2017). The effect of w/c ratio on microstructure of self-compacting concrete (SCC) with sugarcane bagasse ash (SCBA). AIP Conference Proceedings, 1903(November). https://doi.org/10.1063/1.5011545.
  14. Khalaf, M. A., Ban, C. C., & Ramli, M. (2019). The constituents, properties and application of heavyweight concrete: A review. Construction and Building Materials, 215, 73–89. https://doi.org/10.1016/j.conbuildmat.2019.04.146.
  15. Kilincarslan, S., Akkurt, I., & Basyigit, C. (2006). The effect of barite rate on some physical and mechanical properties of concrete. Materials Science and Engineering A, 424(1–2), 83–86. https://doi.org/10.1016/j.msea.2006.02.033.
  16. Li, Z. (2011). Advanced Concrete Technology. New Jersey: JOHN WILEY & SONS, INC.
  17. Liu, H., Shi, J., Qu, H., & Ding, D. (2019). An investigation on physical, mechanical, leaching and radiation shielding behaviors of barite concrete containing recycled cathode ray tube funnel glass aggregate. Construction and Building Materials, 201, 818–827. https://doi.org/10.1016/j.conbuildmat.2018.12.22.
  18. Mahmoud, E., Ibrahim, A., El-Chabib, H., & Patibandla, V. C. (2013). Self-Consolidating Concrete Incorporating High Volume of Fly Ash, Slag, and Recycled Asphalt Pavement. International Journal of Concrete Structures and Materials, 7(2), 155–163. https://doi.org/10.1007/s40069-013-0044-1.
  19. Masoud, M. A., Kansouh, W. A., Shahien, M. G., Sakr, K., Rashad, A. M., & Zayed, A. M. (2020). An experimental investigation on the effects of barite/hematite on the radiation shielding properties of serpentine concretes. Progress in Nuclear Energy, 120(November 2019), 103220. https://doi.org/10.1016/j.pnucene.2019.103220.
  20. Naik, M. P. P., & Vyawahare, P. M. R. (2013). Comparative Study of Effect of Silica Fume and Quarry Dust on Strength of Self Compacting Concrete. International Journal of Engineering Research and Applications, 3(3), 1497–1500.
  21. Nambiar, E. K. K., & Ramamurthy, K. (2006). Models relating mixture composition to the density and strength of foam concrete using response surface methodology. Cement and Concrete Composites, 28(9), 752–760. https://doi.org/10.1016/j.cemconcomp.2006.06.001.
  22. Neville, A. M. (2011). Properties of Concrete (5 th ed.). Retrieved from http://www.pearsoned.co.uk.
  23. Omid, L.-O., Ali, S., & Iman, M. N. (2020). The influences of maximum aggregate size and cement content on the mechanical and radiation shielding characteristics of heavyweight concrete. Progress in Nuclear Energy, 121, 103222. https://doi.org/10.1016/j.pnucene.2019.103222.
  24. Ostrowski, K., & Oleksik, K. (2018). Comparative analysis of the coarse aggregate shapes used to manufacturing high performance self-compacting concrete Analiza porównawcza kształtu kruszyw stosowanych w produkcji wysokowartościowych betonów samozagęszczalnych. 75–86. https://doi.org/10.4467/2353737XCT.18.101.8796.
  25. Ouda, A. S. (2015). Development of high-performance heavy density concrete using different aggregates for gamma-ray shielding. Progress in Nuclear Energy, 79, 48–55. https://doi.org/10.1016/j.pnucene.2014.11.009.
  26. Özen, S., Şengül, C., Erenoğlu, T., Çolak, Ü., Reyhancan, İ. A., & Taşdemir, M. A. (2016). Properties of Heavyweight Concrete for Structural and Radiation Shielding Purposes. Arabian Journal for Science and Engineering, 41(4), 1573–1584. https://doi.org/10.1007/s13369-015-1868-6.
  27. Revuelta, D., Barona, A., & Navarro, D. (2009). Medida de las principales propiedades en el estado fresco, y de la resistencia a la segregación, en un hormigón autocompactante de alta densidad fabricado con barita. Materiales de Construccion, 59(295), 31–44. https://doi.org/10.3989/mc.2009.43907.
  28. Smith, W. F. (2005). Experimental design for formulation. SIAM.
  29. The European Project Group. (2005). The European Guidelines for Self-Compacting Concrete. The European Guidelines for Self Compacting Concrete, (May), 63.
  30. Topcu, I. B. (2003). Properties of heavyweight concrete produced with barite. Cement and Concrete Research, 33(6), 815–822. https://doi.org/10.1016/S0008-8846(02)01063-3.
  31. TS 639. (1975). Fly Ash, Turkish Standard Institutions, Ankara, 1975.(in Turkish). Ankara.
  32. TS 706 EN 12620+A1. (2009). Aggregates for concrete, Turkish Standard Institutions, Ankara,2009.
  33. TS EN 12390-3. (2003). Concrete-Hardened Concrete Tests-Part 3: Determination of compressive strength in test specimens, Turkish Standards Institutions, Ankara, 2003 (in Turkish).
  34. TS EN 197-1. (2002). Cement-Part 1: General Cements-Composition, Features and Eligibility Criteria, Turkish Standard Institutions, Ankara, 2012 (in Turkish). Ankara.
  35. Tunc, E. T., & Alyamac, K. E. (2020). Determination of the relationship between the Los Angeles abrasion values of aggregates and concrete strength using the Response Surface Methodology. Construction and Building Materials, 260, 437–446. https://doi.org/10.1016/j.conbuildmat.2020.119850.
  36. Turker, P., Erdogan, B., Kantas, F., & Yeginobalı, A. (2009). Classification and properties of fly ash in Turkey, TCMB/R&D/Y03.03,Ankara(in Turkish). Ankara.
  37. Valizadeh, A., Aslani, F., Asif, Z., & Roso, M. (2019). Development of heavyweight self-compacting concrete and ambient-cured heavyweight geopolymer concrete using magnetite aggregates. Materials, 12(7). https://doi.org/10.3390/ma12071035.
  38. Venkatakrishnaiah, R., & Sakthivel, G. (2015). Bulk utilization of flyash in self compacting concrete. KSCE Journal of Civil Engineering, 19(7), 2116–2120. https://doi.org/10.1007/s12205-015-0706-4.
  39. Zabihi-samani, M., Mokhtari, S. P., & Raji, F. (2018). Effects of Fly Ash on Mechanical Properties of Concrete. 8(2), 35–40. https://doi.org/10.2478/jaes-2018-0016.
Language: English
Page range: 77 - 86
Submitted on: Jan 10, 2022
Accepted on: Feb 15, 2022
Published on: May 19, 2022
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2022 Sibel Sagliyan, E. Yalcin, K. E. Alyamac, C. Polat, published by University of Oradea, Civil Engineering and Architecture Faculty
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.