The Effect of Agricultural Waste as a Filler in Fibre Cement Board Reinforced with Natural Cellulosic Fibres
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The Effect of Agricultural Waste as a Filler in Fibre Cement Board Reinforced with Natural Cellulosic Fibres

Authors: Anuoluwapo S. Taiwo, David S. Ayre, Morteza Khorami, Sameer S. Rahatekar

Abstract:

This investigation aims to characterize the effect of corncob (CC), an agricultural waste, for potential use as a filler material, reducing cement in natural fibre-reinforced cement composite boards used for building applications in low-cost housing estates in developing countries. The CC is readily and abundantly available in many West African States. However, this agricultural waste product has not been put to any effective use. Hence, the objective of the current research is to convert this massive agro-waste resource into a potential material for use as filler materials reducing cement contents in fibre-cement board production. Kraft pulp fibre-reinforced cement composite boards were developed with the incorporation of the CC powder at varying percentages of 1-4% as filler materials to reduce the cement content, using a laboratory-simulated vacuum de-watering process. The mechanical properties of the developed cement boards were characterized through a three-point bending test, while the fractured morphology of the cement boards was examined through a Scanning Electron Microscope (SEM). Results revealed that the flexural strength of the composite board improved significantly with an optimum enhancement of 39% when compared to the reference sample without CC replacement, however, the flexural behaviour (ductility) of the composite board was slightly affected by the addition of the CC powder at higher percentage. SEM observation of the fractured surfaces revealed good bonding at the fibre-matrix interface as well as a ductile-to-brittle fracture mechanism. Overall, the composite board incorporated with 2% CC powder as filler materials had the optimum properties, satisfying the minimum requirements of relevant standards for fibre cement flat sheets.

Keywords: Kraft pulp fibre, fibre-cement board, agricultural waste, sustainability, building applications.

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References:


[1] Gartner E. Industrially interesting approaches to “low-CO2” cements. Cement and Concrete Research. September 2004; 34(9): 1489–1498. Available at: DOI:10.1016/j.cemconres.2004.01.021
[2] Gardarsdottir S., De Lena E., Romano M., Roussanaly S., Voldsund M., Pérez-Calvo J-F., et al. Comparison of Technologies for CO2 Capture from Cement Production—Part 2: Cost Analysis. Energies. 10 February 2019; 12(3): 542. Available at: DOI:10.3390/en12030542
[3] Yang Y., Wang L., Cao Z., Mou C., Shen L., Zhao J., et al. CO2 emissions from cement industry in China: A bottom-up estimation from factory to regional and national levels. Journal of Geographical Sciences. 16 June 2017; 27(6): 711–730. Available at: DOI:10.1007/s11442-017-1402-8
[4] Taiwo AS., Ayre DS., Khorami M., Rahatekar SS. Optimizing the Mechanical Properties of Cement Composite Boards Reinforced with Cellulose Pulp and Bamboo Fibers for Building Applications in Low-Cost Housing Estates. Materials. 29 January 2024; 17(3): 646. Available at: DOI:10.3390/ma17030646
[5] Sandanayake MS. Environmental Impacts of Construction in Building Industry—A Review of Knowledge Advances, Gaps and Future Directions. Knowledge. 2022; 2(1): 139–156. Available at: DOI:10.3390/knowledge2010008
[6] Ifiok EM., Luna B. Sustainable Materials and Construction Practices in Industrial Buildings. International Journal of Developmental Studies and Environmental Monitoring. 2023; 2(1): 41–52.
[7] B. S., Patil N., Jaiswal KK., Gowrishankar TP., Selvakumar KK., Jyothi MS., et al. Development of sustainable alternative materials for the construction of green buildings using agricultural residues: A review. Construction and Building Materials. March 2023; 368: 130457. Available at: DOI:10.1016/j.conbuildmat.2023.130457
[8] Elfaleh I., Abbassi F., Habibi M., Ahmad F., Guedri M., Nasri M., et al. A comprehensive review of natural fibers and their composites: An eco-friendly alternative to conventional materials. Results in Engineering. 2023; 19: 101271. Available at: DOI:10.1016/j.rineng.2023.101271
[9] Das H., Saikia P., Kalita D. Physico-Mechanical Properties of Banana Fiber Reinforced Polymer Composite as an Alternative Building Material. Key Engineering Materials. July 2015; 650: 131–138. Available at: DOI:10.4028/www.scientific.net/KEM.650.131
[10] Savastano H., Warden PG., Coutts RSP. Potential of alternative fibre cements as building materials for developing areas. Cement and Concrete Composites. August 2003; 25(6): 585–592. Available at: DOI:10.1016/S0958-9465(02)00071-9
[11] Thankam GL., Thurvas Renganathan N. Ideal supplementary cementing material – Metakaolin: A review. International Review of Applied Sciences and Engineering. April 2020; 11(1): 58–65. Available at: DOI:10.1556/1848.2020.00008
[12] Mármol G., Savastano H., Monzó J., Borrachero MV., Soriano L., Payá J. Portland cement, gypsum and fly ash binder systems characterization for lignocellulosic fiber-cement. Construction and Building Materials. 124. Available at: DOI:10.1016/J.CONBUILDMAT.2016.07.083
[13] Stafford FN., Dias AC., Arroja L., Labrincha JA., Hotza D. Life cycle assessment of the production of Portland cement: a Southern Europe case study. Journal of Cleaner Production. July 2016; 126: 159–165. Available at: DOI:10.1016/j.jclepro.2016.02.110
[14] Suwanmaneechot P., Nochaiya T., Julphunthong P. Improvement, characterization and use of waste corncob ash in cement-based materials. IOP Conference Series: Materials Science and Engineering. 9 December 2015; 103: 012023. Available at: DOI:10.1088/1757-899X/103/1/012023
[15] Afraz A., Ali M. Effect of Banana Fiber on Flexural Properties of Fiber Reinforced Concrete for Sustainable Construction. The 1st International Conference on Energy, Power and Environment. Basel Switzerland: MDPI; 2021. pp. 1–4. Available at: DOI:10.3390/engproc2021012063
[16] Ige OE., Olanrewaju OA., Duffy KJ., Obiora C. A review of the effectiveness of Life Cycle Assessment for gauging environmental impacts from cement production. Journal of Cleaner Production. November 2021; 324: 129213. Available at: DOI:10.1016/j.jclepro.2021.129213
[17] Etim M-A., Babaremu K., Lazarus J., Omole D. Health Risk and Environmental Assessment of Cement Production in Nigeria. Atmosphere. 30 August 2021; 12(9): 1111. Available at: DOI:10.3390/atmos12091111
[18] Ighalo JO., Adeniyi AG. A perspective on environmental sustainability in the cement industry. Waste Disposal & Sustainable Energy. 14 September 2020; 2(3): 161–164. Available at: DOI:10.1007/s42768-020-00043-y
[19] Khorami M., Sobhani J. An experimental study on the flexural performance of agro-waste cement composite boards. International Journal of Civil Engineering. 2013; 11(4): 207–216.
[20] Liuzzi S., Rubino C., Stefanizzi P., Martellotta F. The Agro-Waste Production in Selected EUSAIR Regions and Its Potential Use for Building Applications: A Review. Sustainability. 7 January 2022; 14(2): 670. Available at: DOI:10.3390/su14020670
[21] Afolalu AS., Salawu EY., Ogedengbe TS., Joseph OO., Okwilagwe O., Emetere ME., et al. Bio- Agro Waste Valorization and its Sustainability in the Industry: A Review. IOP Conf. Series: Materials Science and Engineering. Bristol: IOP Publishing; 2021. p. 1170.
[22] Rowell RM., Young RA., Rowell JK., Knill C. Paper and Composites from Agro-based Resources. Carbohydrate Polymers. January 2000; 41(1): 69–78. Available at: DOI:10.1016/S0144-8617(99)00096-X
[23] Ministry of Agriculture FC and RD. Agricultural Sector Policy Framework. South Sudan; 2012.
[24] Obi FO., Ugwuishiwu BO., Nwakaire JN. Agricultural waste concept, generation, utilization and management. Nigerian Journal of Technology. 2016; 35(4): 957–964. Available at: DOI:10.4314/njt.v35i4.34
[25] Reddy N., Yang Y. Biofibers from agricultural byproducts for industrial applications. Trends in Biotechnology. January 2005; 23(1): 22–27. Available at: DOI:10.1016/j.tibtech.2004.11.002
[26] Mishra UC., Sarsaiya S., Gupta A. A systematic review on the impact of cement industries on the natural environment. Environmental Science and Pollution Research. 17 March 2022; 29(13): 18440–18451. Available at: DOI:10.1007/s11356-022-18672-7
[27] Poudyal L., Adhikari K. Environmental sustainability in cement industry: An integrated approach for green and economical cement production. Resources, Environment and Sustainability. June 2021; 4: 100024. Available at: DOI:10.1016/j.resenv.2021.100024
[28] Dotun, AO., Olalekan, OS., Olugbenga, AL., Emmanuel, MA. “Physical and Mechanical Properties Evaluation of Corncob and Sawdust Cement Bonded Ceiling Boards.” International Journal of Engineering Research in Africa, Apr. 2019, vol. 42, pp. 65–75. Available at: DOI:10.4028/www.scientific.net/jera.42.65.
[29] Șerbănoiu AA., Grădinaru CM., Muntean R., Cimpoeșu N., Șerbănoiu BV. Corncob Ash versus Sunflower Stalk Ash, Two Sustainable Raw Materials in an Analysis of Their Effects on the Concrete Properties. Materials. 24 January 2022; 15(3): 868. Available at: DOI:10.3390/ma15030868
[30] Ahmad J., Arbili MM., Alabduljabbar H., Deifalla AF. Concrete made with partially substitution corncob ash: A review. Case Studies in Construction Materials. July 2023; 18: e02100. Available at: DOI:10.1016/j.cscm.2023.e02100
[31] Memon SA., Khan MK. Ash blended cement composites: Eco-friendly and sustainable option for utilization of corncob ash. Journal of Cleaner Production. February 2018; 175: 442–455. Available at: DOI:10.1016/j.jclepro.2017.12.050
[32] Adesanya DA., Raheem AA. Development of corncob ash blended cement. Construction and Building Materials. January 2009; 23(1): 347–352. Available at: DOI:10.1016/j.conbuildmat.2007.11.013
[33] Aliyu A., Abbagana M., Duna S. Mechanical Properties Of Concrete Containing Corncob Ash. International Journal of Scientific Research and Engineering Studies. 2016; 3(6): 47–51.
[34] Ahmed A., Kamau J. A Review of the Use of Corncob Ash as a Supplementary Cementitious Material. European Journal of Engineering and Technology Research. 15 August 2017; 2(8): 1–6. Available at: DOI:10.24018/ejeng.2017.2.8.415
[35] Akindahunsi AA., Ogune CN., Ayodele AL., Fajobi AB., Olajumoke AM. Evaluation of the performance of corncob ash in cement mortars. Journal of Building Pathology and Rehabilitation. 14 December 2022; 7(1): 72. Available at: DOI:10.1007/s41024-022-00213-x
[36] Memon SA., Javed U., Khushnood RA. Eco-friendly utilization of corncob ash as partial replacement of sand in concrete. Construction and Building Materials. January 2019; 195: 165–177. Available at: DOI:10.1016/j.conbuildmat.2018.11.063
[37] Wei J., Meyer C. Utilization of rice husk ash in green natural fiber-reinforced cement composites: Mitigating degradation of sisal fiber. Cement and Concrete Research. 81. Available at: DOI:10.1016/J.CEMCONRES.2015.12.001
[38] de Souza MJC., de Melo RR., Guimarães JB., Carnaval TKB de A., Pimenta AS., Mascarenhas ARP. Wood–cement boards with addition of coconut husk. Wood Material Science & Engineering. 2 November 2022; 17(6): 617–626. Available at: DOI:10.1080/17480272.2021.1914722
[39] Campbell MD., Coutts RSP. Wood fibre-reinforced cement composites. Journal of Materials Science. 15. Available at: DOI:10.1007/BF00550621
[40] Akinyemi BA., Dai C. Development of banana fibers and wood bottom ash modified cement mortars. Construction and Building Materials. 2020; 241: 1–9. Available at: DOI:10.1016/j.conbuildmat.2020.118041
[41] Owolabi T.A., Oladipo I.O., Popoola O.O. Effect of Corncob Ash as Partial Substitute for Cement in Concrete. New York Science Journal. 2015; 8(11): 1–4.
[42] Price A, Yeargin R, Fini E, Abu-Lebder T. Investigating effects of the introduction of corncob ash into Portland cement concrete: Mechanical and thermal properties. American Journal of Engineering and Applied Sciences. 1 January 2014; 7(1): 137–148. Available at: DOI:10.3844/ajeassp.2014.137.148
[43] Karo PK., Pratama RO., Marjunus R. The Effect of Adding Corncob Ash to The Physical and Mechanical Properties of Mortar. Journal of Energy, Material, and Instrumentation Technology. 28 February 2023; 4(1). Available at: DOI:10.23960/jemit.v4i1.142
[44] Murthi P., Poongodi K., Gobinath R. Effects of Corncob Ash as Mineral Admixture on Mechanical and Durability Properties of Concrete – A Review. IOP Conference Series: Materials Science and Engineering. 1 December 2020; 1006(1): 12–27. Available at: DOI:10.1088/1757-899X/1006/1/012027
[45] American Society for Testing and Materials. Specification for Portland Cement. ASTM International, West Conshohocken 1994.
[46] Shakouri M., Exstrom CL., Ramanathan S., Suraneni P. Hydration, strength, and durability of cementitious materials incorporating untreated corncob ash. Construction and Building Materials. May 2020; 243: 118171. Available at: DOI:10.1016/j.conbuildmat.2020.118171
[47] BS EN 12467. Fibre Cement Flat Sheets – Product Specification and Test Methods. British Standards Institution, London. British Standards Institution, London; 2012.
[48] Khorami M., Ganjian E. The effect of limestone powder, silica fume and fibre content on flexural behaviour of cement composite reinforced by waste Kraft pulp. Construction and Building Materials. September 2013; 46: 142–149. Available at: DOI:10.1016/j.conbuildmat.2013.03.099