Green concrete production with waste materials as cement substitution: A literature review

Main Article Content

Muhammed Tanyıldızı
Erden Ozan Karaca
Nusret Bozkurt

Abstract

In terms of sustainability, using waste material as a cement substitute in concrete has become a global trend. This review article focused on studies that were performed to investigate the effect of some waste materials including eggshell powder (ESP), ceramic waste powder (CWP), rice husk ash (RHA) and corn cob ash (CCA) as cement substitutes on the strength properties of the concrete mixture. The main purpose of this paper is to draw attention to the fact that the use of these waste materials mentioned above as cement substitutes is an environmentally friendly way that prevents their possible harmful effects on both the ecosystem and human beings. In addition, it is aimed to show that cement production, which causes greenhouse gas emissions, which is one of the major causes of global warming, can be reduced as a result of using waste materials as cement substitute material.

Article Details

How to Cite
Tanyıldızı, M. ., Karaca, E. O. ., & Bozkurt, N. . (2022). Green concrete production with waste materials as cement substitution: A literature review. Engineering Applications, 1(1), 33–45. Retrieved from https://publish.mersin.edu.tr/index.php/enap/article/view/315
Section
Articles

References

Güneyisi, E., Gesoglu, M., Akoi, A. O. M., & Mermerdas, K., (2014). Combined effect of steel fiber and metakaolin incorporation on mechanical properties of concrete. Construction and Building Materials, 56, 83-91.

Naik, T. N. (2008). Sustainability of concrete construction. Practice Periodical on Structural Design and Construction, 3(2).

Pereira, C. L., Savastano, H. J., Paya Bernabeu, J. J., Santos, S. F., Borrachero Rosado, M. V., Monzó Balbuena, J. M., & Soriano Martinez, L. (2013). Use of highly reactive rice husk ash in the production of cement matrix reinforced with green coconut fiber. Industrial Crops and Products. 49, 88-96.

İpek, S. (2022). Macro and micro characteristics of eco-friendly fly ash-based geopolymer composites made of different types of recycled sand. Journal of Building Engineering, 52. https://doi.org/10.1016/j.jobe.2022.104431.

Öz, H. Ö., Yücel, H. E., Güneş, M., Köker, T. Ş., (2021). Fly-ash-based geopolymer composites incorporating cold-bonded lightweight fly ash aggregates. Construction and Building Materials, 272. https://doi.org/10.1016/j.conbuildmat.2020.121963.

Niş, A., Eren,N. A., & Çevik, A. (2022). Effects of recycled tyre rubber and steel fibre on the impact resistance of slag-based self-compacting alkali-activated concrete. European Journal of Environmental and Civil Engineering. https://doi.org/10.1080/19648189.2022.2052967.

Wang, X., Ji, Guanyu., Zhang, Yi., Guo, Y., & Zhao, J. (2021). Research on High- and Low-Temperature Characteristics of Bitumen Blended with Waste Eggshell Powder. Materials, 14.

Dastjerdi, B., Strezov, V., Kumar, R., He, J., & Behnia, M. (2020). Comparative Life Cycle Assessment of System Solution Scenarios for Residual Municipal Solid Waste Management in NSW, Australia. Science of the Total Environment, 767.

Talan, A., Tiwari, B., Yadav, B., Tyagi, R. D., Wong, J. W. C., & Drogui, P. (2021). Food waste valorization: Energy production using novel integrated systems. Bioresource Technology, 322.

Cimpan, C., Rothmann, M., Hamelin, L., & Wenzel, H. (2015). Towards increased recycling of household waste: Documenting cascading effects and material efficiency of commingled recyclables and biowaste collection. Journal of Environmental Management, 157, 69-83.

Hamada, H. M., Tayeh, B. A., Al-Attar, A., Yahaya, F. M., Muthusamy, K., & Humuda, A. M. (2020). The present state of the use of eggshell powder in concrete: A review. Journal of Building Engineering, 32.

Bashir, A. M., & Manusamy, Y. (2015). Characterization of Raw Egg Shell Powder (ESP) as A Good Bio-filler. Journal of Engineering Research and Technology, 2, 1.

Vaidya, N., & Bastwadkar, M. P. (2019). Experimental Study of Partial Replacement of Cement with Eggshell Powder in Concrete. International Journal of Engineering Development and Research, 7(4).

Parthasarathi, N., Prakash, M., & Satyanarayanan, K. S. (2017). Experimental study on partial replacement of cement with egg shell powder and silica füme. Rasayan Journal of Chemistry, 10(2), 442-449.

Panchal, M., Raghavendra, G., Prakash., M. O., & Ojha., S. (2017). Effects of environmental conditions on erosion wear of eggshell particulate epoxy composites. Silicon, 10, 1-8.

Bakis, A. (2021). Interlocking paving stones made of limestone sand and volcanic ash aggregates. Road Materials and Pavement Design.

Demirhan, S., & Demiral, Ö. (2021). Investigation of microstructural properties of high-volume fly ash blended cement mortars including micronized calcite. Journal of the Faculty of Engineering and Architecture of Gazi University, 36(4), 2255-2269.

Abdulabbas, Z. H. (2016). Investigation of drying shrinkage and compressive strength of cement mortar with partial replacement of cement by egg shell powder and milled glass. Al-Qadisiyah Journal for Engineering Sciences, 9, 316-330.

Tan, Y. Y., Chin, S. C., & Doh, S. I. (2018). Eggshell as a partial cement replacement in concrete development. Magazine of Concrete Research, 70(13), 662-670. https://doi.org/10.1680/jmacr.17.00003.

Yerremala, A. (2014). Properties of concrete with eggshell powder as cement replacement. The Indian Concrete Journal, 94-102.

Kumar, P., Sarathy, V., & Ravindraraj, J. (2015). Experimental Study on Partial Replacement of Cement with Egg Shell Powder. International Journal of Innovations in Engineering and Technology, 5(2).

Arif, S. M., Rokiah, O., Khairunisa, M., Chong, B. W., Chek, Y. C., Youventharan, D., ... & Doh, S. I. (2021, February). Compressive Strength of Concrete containing Eggshell Powder as Partial Cement Replacement. In IOP Conference Series: Earth and Environmental Science (Vol. 682, No. 1, p. 012031). IOP Publishing.

Jhatial, A. A., Sohu, S., Memon, M. J., Bhatti, N. U. K., & Memon, D. (2019). Eggshell powder as partial cement replacement and its effect on the workability and compressive strength of concrete. International Journal of Advanced and Applied Sciences, 6(9), 71-75.

Teara, A., Doh, S. I., Chin, S.C., Ding, Y. J., Wong, J., & Jiang, X. X. (2019). Investigation on the durability of use fly ash and eggshells powder to replace the cement in concrete productions. IOP Conf. Series: Earth and Environmental Science, 244.

Dezfouli, A. A. (2020). Effect of Eggshell Powder Application on the Early and Hardened Properties of Concrete. Journal of Civil Engineering and Materials Application, 4(4), 209-221.

Allie, M. A., & Anand, E. (2018). Behaviour Of Concrete Containing Egg Shell Powder As Cement Replacing Material. International Journal of Scientific Development and Research – IJSDR, 3(5).

Hama, S. M. (2017). Improving mechanical properties of lightweight Porcelanite aggregate concrete using different waste material, Internation Journal of Sustainable Built Environment, 6, 81-90.

Soumyan, K., & Wiswanath, A. K. (2016). Experimental Study to Check the Effect of Egg Shell Powder and Rice Husk Ash on the Property of Concrete. International Journal of Engineering Research & Technology (IJERT).

Alsaif, A. (2021). Utilization of ceramic waste as partially cement substitute – A review. Construction and Building Materials, 300.

El-Dieb, A. S., & Kanaan, D. M. (2018). The Use of Ceramic Waste Powder (CWP) in Making Eco-Friendly Concretes. Ceramic Materials - Synthesis, Characterization, Applications and Recycling.

El-Dieb, A. S., & Kanaan, D. M. (2018). Ceramic waste powder an alternative cement replacement – Characterization and evaluation. Sustainable Materials and Technologies, 17. https://doi.org/10.1016/j.susmat.2018.e00063.

Higashiyama, H., Yagishita, F., Sano, M., & Takahashi,O. (2012). Compressive strength and resistance to chloride penetration or mortars using ceramic waste as fine aggregate, Construction and Building Materials, 26(1),96-101.

Manigandan, S., & Saravanakumar, G. S. (2017). Experimental Study on Partial Replacement of Cement by Using Ceramic Waste Powder, International Journal for Research in Applied Science & Engineering-Technology (IJRASET).

Tanyıldızı, M. (2022). Capillarity of Concrete Incorporating Waste Ceramic Powder. Muş Alparslan University Journal of Science, 10 (1), 925-930.

Bhargav, M., & Kansal, R. (2020). Experimental investigation to Substitue of cement with ceramic tile powders in Concrete. International Research Journal of Engineering and Technology (IRJET), 45.98.

Kannan, D. M., Aboubakr, S. H., El-Dieb, A.S., & Reda Taha, M. M. (2017). High performance concrete incorporating ceramic waste powder as large partial replacement of Portland cement. Construction and Building Materials, 144, 35-41. https://doi.org/10.1016/j.conbuildmat.2017.03.115.

Lasseuguette, E., Burns, S., Simmons, D., Francis, E., Chai, H. K., Koutsos, V., & Huang, Y. (2017). Recycling Ceramic Waste to Produce Green Concrete. 1st International Conference on Construction Materials for Sustainable Future.

Katrhika, V., Sathanandham, T., Sathes, K. K., & Manikandan, M. (2015). Strength characteristics on concrete with ceramic waste as a partial replacement of cement. Journal of Chemical and Pharmaceutical Sciences, 8(4).

Uniyal, A., & Singh, K. (2019). Partial Replacement of Cement in Concrete using Ceramic Waste. International Journal of Engineering Research & Technology (IJERT).

Daniel, S., & Raju, A. A. (2018). A Study of Properties of Concrete Making Partial Replacement of Cement by Ceramic waste Powder. International Research Journal of Engineering and Technology (IRJET), 5(3).

Arthi, A. J. J. (2016). Effective Replacement of Cement by Ceramic Waste in Concrete for Sustainable Development. International Journal of Research in Engineering and Technology, 5(11).

Rani, M. S. (2016). A Study on Ceramic Waste Powder. SSRG International Journal of Civil Engineering (SSRG – IJCE), 3(7).

Devi, C., & Venkateswarlu, D. (2015). A Study on Various Properties of Concrete by Using Ceramic Dust Powder as a Partial Replacement of Cement. International Journal of Engineering and Technical Research (IJETR), 3(12).

Zareei, S. A., Ameri, F., Dorostkar, F., & Ahmadi, M. (2017). Rice husk ash as a partial replacement of cement in high strength concrete containing micro silica: Evaluating durability and mechanical properties. Case studies in construction materials, 7, 73-81.

Oyejobi, D. O., Abdulkadir, T. S., & Ajibola, V. (2014). Investigation of Rice Husk Ash Cementitious Constituent in Concrete. International Journal of Agricultural Technology, 10(3), 533-542.

Siddika, A., Al Mamun, A., Alyousef, R., & Mohammadhosseini, H. (2021). State-of-the-art-review on rice husk ash: A supplementary cementitious material in concrete. Journal of King Saud University - Engineering Sciences, 33(5), 294-307. https://doi.org/10.1016/j.jksues.2020.10.006.

Gansean, K., Rajagopal, K, & Thangavel, K. (2008). Rice husk ash blended cement: Assessment of optimal level of replacement for strength and permeability properties of concrete. Construction and Building Materials, 22, 1675-1683. https://doi.org/10.1016/j.conbuildmat.2007.06.011.

Habeeb, G. A., & Fayyadh, M. M. (2009). Rice Husk Ash concrete: The effect of RHA average particle size on mechanical properties and drying shrinkage. Australian Journal of Basic and Applied Sciences, 3(3), 1616-1622.

Memon, S. A., Shaikh, M. A., & Akbar, H. (2011). Utilization of rice husk ash as viscosity modifying agent in self compacting concrete, Construction and Building Materials, 25(2), 1044-1048. https://doi.org/10.1016/j.conbuildmat.2010.06.074.

Chopra, D., & Siddique, R. (2015). Strength, permeability and microstructure of self-compacting concrete containing rice husk ash, 130, 72-80. https://doi.org/10.1016/j.biosystemseng.2014.12.005.

Le, H. T., Nguyen, S. T., & Ludwig, H. M. (2014). A study on high performance fine-grained concrete containing rice husk ash. International Journal of Concrete Structures and Materials volume, 8, 301-304.

Corderio, G. C., Filho, R. D. T, & Fairbairn, E. M. R. (2009). Use of ultrafine rice husk ash with high-carbon content as pozzolan in high performance concrete. Materials and Structures, 42, 983-992.

Sua-iam, G., & Makull, N. (2013). Utilization of limestone powder to improve the properties of self-compacting concrete incorporating high volumes of untreated rice husk ash as fine aggregate. Construction and Building Materials, 38, 455-464. https://doi.org/10.1016/j.conbuildmat.2012.08.016.

Givi, A. N., Rashid, S. A., Aziz, F. N. A., & Salleh, M. A. M. (2011). Assessment of the effects of rice husk ash particle size on strength, water permeability and workability of binary blended concrete. Construction and Building Materials, 24(11), 2145-2150. https://doi.org/10.1016/j.conbuildmat.2010.04.045.

https://gharpedia.com/blog/rice-husk-ash-in-concrete-pros-cons/. Accessed Date: 2.04.2022

Kartini, K., Nazierah, N. M. Y., Zaidahtulakmal, M. Z., & Aisyah, S. G. (2012). Effects of Silica in Rice Husk Ash (RHA) in producing High Strength Concrete. International Journal of Engineering and Technology, 2(12).

Takhelmayum, G., Prasad, R., & Savitha, A. L. (2014). Experimental Study on the Properties of cement concrete using Rice Husk Ash. International Journal of Engineering Science and Innovative Technology (IJESIT), 3(6).

Zaid, O., Ahmad, J., Siddique, M. S., & Aslam, F. (2021). Effect of Incorporation of Rice Husk Ash Instead of Cement on the Performance of Steel Fibers Reinforced Concrete. Frontiers in Materials. https://doi.org/10.3389/fmats.2021.665625.

Saand, A., Ali, T., Keerio, M. A., & Bangwar, D. K. (2019). Experimental Study on the Use of Rice Husk Ash as Partial Cement Replacement in Aerated Concrete. Engineering, Technology & Applied Science Research, 9(4), 4534-4537.

Patil, V., & Paliwal, P. M. (2020). Partial Replacement of Cement with Rice Husk Ash in Cement Concrete. International Journal of Engineering Research & Technology, 9, 12.

Krishna, N. K., Sandeep, S., & Mini, K. M. (2016). Study on concrete with partial replacement of cement by rice husk ash. IOP Conf. Series: Materials Science and Engineering, 149.

Musau, M. K., Shitanda, D., Githinji, M., & Mwende, C. (2021). Use Of Rice Husks Ash as Partial Replacement of Cement in Concrete Paving Blocks. Journal of Engineering in Agriculture and the Environment, 7(1).

Hussin, T. A. R., & Parasuraman, J. (2018). Partial Replacement of Cement with Commercial Available Rice Husk Ash In Concrete, 6(1).

Adebisi, O., Taiwo, A. M., Nathaniel, O., & Olusola, A. E. (2019). Suitability of Corn Cob Ash as Partial Replacement for Cement in Concrete. International Journal of Scientific & Engineering Research Volume, 10(10).

Murthi, P., Poongodi, P., & Gobinath, R. (2020). Effects of Corn Cob Ash as Mineral Admixture on Mechanical and Durability Properties of Concrete – A Review. IOP Conf. Series: Materials Science and Engineering, 1006.

Shazim, Ali., Memon, M.K.K. (2017). Ash blended cement composites: eco-friendly and sustainable option for utilization of corn cob ash. Cleaner Production. https://doi.org/10.1016/j.jclepro.2017.12.050.

Price, A., Yeargin, R., Fini, E., & Abu-Lebdeh., T. (2014). Investigating effects of introduction of corncob ash into Portland cements concrete: Mechanical and thermal properties. American Journal of Engineering and Applied Science, 7, 133-144.

Pranav, H. D. (2018). Experimental study on corn cob ash powder as partial replacement of cement in concrete. International research Journal of Engineering and Technology, 5(6), 724-728.

Udoeyo, F. F., & Abubakar, S. A. (2003). Maize-cob ash as filler in concrete. Journal of Materials in Civil Engineering, 15, 205- 208.

Akila, S., Manila, A., Meera, D., Nathigamani, G., & Ramya, S. (2018). A partial replacement of cement with corn cob ash in concrete production International Journal of Advanced Research Trends in Engineering and Technology, 226-233.

Murthi, P., Poongodi, K., & Gobinath, R. (2020). Effects of Corn Cob Ash as Mineral Admixture on Mechanical and Durability Properties of Concrete –A Review. IOP Conf. Series: Materials Science and Engineering.

Memon, S. A., Javed, U., & Khushnood, R. A. (2019). Eco-friendly utilization of corncob ash as partial replacement of sand in concrete. Construction and Building Materials, 195, 165-177. https://doi.org/10.1016/j.conbuildmat.2018.11.063.

Tiza, M. T. (2016). Partial Replacement of Cement with Corn Cob Ash. International Journal for Innovative Research in Multidisciplinary Field, 2(7).

Singh, K., Singh, J., & Kumar, S. (2017). A Sustainable Environmental Study on Corn Cob Ash Subjected to Elevated Temperature. Current World Environment, 13(1), 144-150.

Bala, A., Aminulai, H. O., Abubakar, M., Abdulrahman, H. S., & Musa, U. (2015). Partial Replacement of Cement with Corn Cob Ash in Concrete Production. Department of Civil Engineering, Federal University of Technology, Minna, Nigeria, Technical Note.

Adesanya, A. D., & Raheem, A. A. (2009). A study of the workability and compressive strength characteristics of corn cob ash blended cement concrete. Construction and Building Materials, 23(1), 311-317. https://doi.org/10.1016/j.conbuildmat.2007.12.004.

Oladipupo, O., & Festus, O. (2012). Strength Properties of Corn Cob Ash Concrete. Journal of Emerging Trends in Engineering and Applied Sciences (JETEAS), 3(2), 297-301.

Kamau, J., Ahmed, A., Hirst, P., & Kangwa, J. (2016). Suitability of Corncob Ash as a Supplementary Cementitious Material. International Journal of Materials Science and Engineering, 4(4).

Oluborode, K.D., & Olofintuyi, I.O. (2015). Strength Evaluation of Corn cob ash in a blended Portland cement. International Journal of Engineering and Innovative Technology (IJEIT), 4(12).

Desai, P. H. (2018). Experimental Study on Corn Cob Ash Powder as Partial Replacement of Cement In Concrete. International Research Journal of Engineering and Technology (IRJET), 5(6).

Selina,R. G., Dinesh, S., Bharath, R. P., & Kishorenandha, S. (2020). Assessment on Influence of Corncob Ash as a Partial Replacement of Cement in Concrete. International Journal of Innovative Technology and Exploring Engineering (IJITEE), 9(8).

Tanyıldızı, M., & Karaca, E. O. (2022). An investigation on the effect of cement replacement with waste materials on the strength properties of concretes. Advanced Engineering Days (AED), 2, 62-64.