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CIVIL ENGINEERING

Utilization of waste paper ash as supplementary cementitious material in C-25 concrete: Evaluation of fresh and hardened properties

& ORCID Icon | (Reviewing editor)
Article: 1938366 | Received 14 Jan 2020, Accepted 27 May 2021, Published online: 28 Jun 2021

References

  • Ali, A., Hashmi, H. N., & Baig, N. (2013). Treatment of the paper mill effluent – A review. Annals of Faculty Engineering Hunedoara - International Journal of Engineering, 11(3), 337–11.
  • Almalkawi, A. T., Salem, T., Hamadna, S., Darsanasiri, A., Soroushian, P., Balchandra, A., & Al-Chaar, G. (2018). Physio-microstructural properties of aerated cement slurry for lightweight structures. Materials, 11(4), 597. https://doi.org/10.3390/ma11040597
  • Ardalan, R. B., Joshaghani, A., & Hooton, R. D. (2017). Workability retention and compressive strength of self-compacting concrete incorporating pumice powder and silica fume. Construction and Building Materials, 134, 116–122. https://doi.org/10.1016/j.conbuildmat.2016.12.090
  • Asmare, G. (2015). Pulp Production from Cotton Stalks using Kraft Pulping. Addis Ababa University.
  • ASTM. (2000). Standard practice for making and curing concrete test specimens in the in ASTM standards. Farmington, 4, 1–8.
  • ASTM. (2001). American Society for Testing and Materials, “Standard Specification for Concrete Aggregates” (Vol. 04). ASTM Standards.
  • ASTM. (2007). American Society for Testing and Materials “Standard Specification for Portland Cement”.
  • Azimi-Pour, M., Eskandari-Naddaf, H., & Pakzad, A. (2020). Linear and non-linear SVM prediction for fresh properties and compressive strength of high volume fly ash self-compacting concrete. Construction and Building Materials, 230, 117021. https://doi.org/10.1016/j.conbuildmat.2019.117021
  • Committee, A.. (2008) . Building Code Requirements for Structural Concrete (ACI 318-08). American Concrete Institute.
  • Devi, S. (2016). A review on cement replacement in construction Industry. International Journal of Civil Engineering and Technology, 3(5), 68–71.
  • Guo, Z., Jiang, T., Zhang, J., Kong, X., Chen, C., & Lehman, D. E. (2020). Mechanical and durability properties of sustainable self-compacting concrete with recycled concrete aggregate and fly ash, slag and silica fume. Construction and Building Materials, 231, 117115. https://doi.org/10.1016/j.conbuildmat.2019.117115
  • Hameed, A. H. (2012). Effect of superplasticizer dosage on workability of self compact concrete. Diyala Journal of Engineering Sciences, 5(2), 66–81.
  • Ighalo, J. O., & Adeniyi, A. G. (2020). A perspective on environmental sustainability in the cement Industry. Waste Disposal and Sustainable Energy, 2(3), 161–164. https://doi.org/10.1007/s42768-020-00043-y
  • Ighalo, J. O., & Adeniyi, A. G. (2020). Utilization of Recycled Polystyrene and Aluminum Wastes in the Development of Conductive Plastic Composites: Evaluation of Electrical Properties. In C. M. Hussain (Ed.), Handbook of Environmental Materials Management (pp. 1–9). Springer Nature.
  • Jexembayeva, A., Salem, T., Jiao, P., Hou, B., & Niyazbekova, R. (2020). Blended cement mixed with Basic Oxygen Steelmaking Slag (BOF) as an alternative green building material. Materials, 13(14), 3062. https://doi.org/10.3390/ma13143062
  • Konkanov, M., Salem, T., Jiao, P., Niyazbekova, R., & Lajnef, N. (2020). Environment-friendly, self-sensing concrete blended with byproduct wastes. Sensors, 20(7), 1925. https://doi.org/10.3390/s20071925
  • Kosmatka, S. H., Kerkhoff, B., & Panarese, W. C. (2003). Design and Control of Concrete Mixtures (14th edition). Portland Cement Association.
  • Kumar, B. A., Sangeetha, G., Srinivas, A., Awoyera, P., Gobinath, R., & Ramana, V. V. (2020). Models for predictions of mechanical properties of low-density self-compacting concrete prepared from mineral admixtures and pumice stone, in Soft computing for problem solving (pp. 677–690). Springer.
  • Li, N., Long, G., Ma, C., Fu, Q., Zeng, X., Ma, K., Xie, Y., & Luo, B. (2019). Properties of self-compacting concrete (SCC) with recycled tire rubber aggregate: A comprehensive study. Journal of Cleaner Production, 236, 117707. https://doi.org/10.1016/j.jclepro.2019.117707
  • Matalkah, F., Salem, T., Shaafaey, M., & Soroushian, P. (2019). Drying shrinkage of alkali activated binders cured at room temperature. Construction and Building Materials, 201, 563–570. https://doi.org/10.1016/j.conbuildmat.2018.12.223
  • Matalkah, F., Salem, T., & Soroushian, P. (2018). Acid resistance and corrosion protection potential of concrete prepared with alkali aluminosilicate cement. Journal of Building Engineering, 20, 705–711. https://doi.org/10.1016/j.jobe.2018.08.001
  • Moretti, J. P., Nunes, S., & Sales, A. (2018). Self-compacting concrete incorporating sugarcane bagasse ash. Construction and Building Materials, 172, 635–649. https://doi.org/10.1016/j.conbuildmat.2018.03.277
  • MUDHC. (2014). Ministry of Urban Development Housing and Construction, Standard Technical Specifications for Building Works.
  • Neville, A. M. (2011). Properties of concrete (5th ed). Trans-Atlantic Publications, Inc.
  • Ofuyatan, M. O., Adeniyi, A. G., & Ighalo, J. O. (2021). Evaluation of fresh and hardened properties of blended silica fume self-compacting concrete (SCC). Research on Engineering Structures and Materials, 1–13. http://doi.org/10.17515/resm2020.228ma1023
  • Ofuyatan, M. O., Adeniyi, A. G., Ijie, D., Ighalo, J. O., & Oluwafemi, J. (2020). Development of high-performance self compacting concrete using eggshell powder and blast furnace slag as partial cement replacement. Construction and Building Materials, 256, 119403. https://doi.org/10.1016/j.conbuildmat.2020.119403
  • Oriyomi, M. O., & Oluwatobi, J. I. (2014). Assessment of the suitability of paper waste as an engineering. Material Engineering, Technology & Applied Science Research, 4(6), 724–727. https://doi.org/10.48084/etasr.485
  • Rahman, A., Barai, A., Sarker, A., & Moniruzzaman, M. (2018). Light weight concrete from rice husk ash and glass powder. Bangladesh Journal of Scientific and Industrial Research, 53(3), 225–232. https://doi.org/10.3329/bjsir.v53i3.38270
  • Ramkumar, K., Rajkumar, P. K., Ahmmad, S. N., & Jegan, M. (2020). A review on performance of self-compacting concrete–use of Mineral Admixtures and steel fibres with artificial neural network application. Construction and Building Materials, 261, 120215. https://doi.org/10.1016/j.conbuildmat.2020.120215
  • Shivangni, K., Kishan, L. P., & Mukul, K. (2015). Review on papercrete. IJCRD, 4(6), 1-16.
  • Standard, E. (2000). Composition, specifications and conformity criteria for common cements. in BS EN standards.
  • Sumit, A. B., & Raut, S. P. (2013). Utilization of waste paper pulp by partial replacement of cement in concrete. International Journal of Engineering Research and Applications (IJERA), 1, 300–309.
  • Vaidevi, C., Kala, T. F., & Kalaiyarrasi, A. (2020). Mechanical and durability properties of self-compacting concrete with marble fine aggregate. Materials Today: Proceedings, 22(2), 829–835.
  • Wang, -C.-C., & Wang, H.-Y. (2017). Assessment of the compressive strength of recycled waste LCD glass concrete using the ultrasonic pulse velocity. Construction and Building Materials, 137, 345–353. https://doi.org/10.1016/j.conbuildmat.2017.01.117
  • Yun, H., Jung, H., & Choi, C. (2007). Mechanical properties of papercrete containing waste paper. Architectural Institute of Korea.