Optimizing sisal fibre-reinforced self-compacting mortar with glass powder for enhanced mechanical properties
DOI:
https://doi.org/10.63746/njtd.v23i1.3929Keywords:
Industrial waste materials, Mechanical properties, Microstructure, Self-compacting mortar, Sustainable constructionAbstract
Sustainable alternatives are needed to reduce cement consumption while maintaining self-compacting behavior and enhancing toughness, ductility, and durability. Sisal fiber, with its high tensile strength and crack-bridging ability, improves ductility, while recycled glass powder (GP), due to its pozzolanic properties, reduces cement use and densifies the matrix. However, their combined effects in self-compacting mortar (SCM) remain underexplored. In this study, a Central Composite Design (CCD), implemented within a Design of Experiments (DoE) framework using Design-Expert software, was employed to statistically model and optimize the effects of GP and sisal fiber. GP replaced cement at 0–22.5%, while sisal fiber (SF) was incorporated at 0–1% by volume. Binder content, sand (14.3?kg), and water (4948?ml) were kept constant. Specimens (50?mm cubes and 40?×?40?×?160?mm beams) were vibrated, cured at room temperature for 24?hours, submerged in water at ~27?°C, and tested at 7, 28, 56, and 90 days. Results show that SF enhances compressive and flexural strength, especially when combined with GP. Microstructural analysis revealed an increased amorphous hydration matrix associated with GP incorporation and suggested enhanced pozzolanic-related phases in SF-modified mixes. The optimal mix (7.5% GP, 0.5% SF) achieved a balance of strength, supporting its potential use in eco-friendly construction.
References
Adesina, A., & Awoyera, P. (2019). Overview of trends in the application of waste materials in self-compacting concrete production. In SN Applied Sciences (Vol. 1, Issue 9). https://doi.org/10.1007/s42452-019-1012-4
Ahmad, J., Majdi, A., Deifalla, A. F., Ben Kahla, N., & El-Shorbagy, M. A. (2022). Concrete Reinforced with Sisal Fibers (SSF): Overview of Mechanical and Physical Properties. In Crystals (Vol. 12, Issue 7). https://doi.org/10.3390/cryst12070952
Bentlemsan, N., Yahiaoui, W., & Kenai, S. (2023). Strength and durability of self-compacting mortar with waste marble as sand substitution. Case Studies in Construction Materials, 19. https://doi.org/10.1016/j.cscm.2023.e02331
Byrne, C. L. (2014). A first course in optimization. In A First Course in Optimization. https://doi.org/10.1201/b17264
de Souza, M. H. B., Silva, L. R. R., Ribeiro, V. A. dos S., Gonçalves, P. C., Melo, M. de L. N. M., Gomes, C. E. M., & dos Santos, V. C. (2023). Influence of Superabsorbent Polymer in Self-Compacting Mortar. Buildings, 13(7). https://doi.org/10.3390/buildings13071640
Hammat, S., Menadi, B., Kenai, S., Thomas, C., Kirgiz, M. S., & Sousa Galdino, A. G. de. (2021). The effect of content and fineness of natural pozzolana on the rheological, mechanical, and durability properties of self-compacting mortar. Journal of Building Engineering, 44. https://doi.org/10.1016/j.jobe.2021.103276
Hassani, M. S., Matos, J. C., Zhang, Y., & Teixeira, E. R. (2023). Green Concrete with Glass Powder—A Literature Review. Sustainability, 15(20). https://doi.org/10.3390/su152014864
Horsakulthai, V. (2021). Effect of recycled concrete powder on strength, electrical resistivity, and water absorption of self-compacting mortars. Case Studies in Construction Materials, 15. https://doi.org/10.1016/j.cscm.2021.e00725
Maraghechi, H., Maraghechi, M., Rajabipour, F., & Pantano, C. G. (2014). Pozzolanic reactivity of recycled glass powder at elevated temperatures: Reaction stoichiometry, reaction products and effect of alkali activation. Cement and Concrete Composites, 53. https://doi.org/10.1016/j.cemconcomp.2014.06.015
More, F. M. D. S., & Subramanian, S. S. (2022). Impact of Fibres on the Mechanical and Durable Behaviour of Fibre-Reinforced Concrete. Buildings, 12(9). https://doi.org/10.3390/buildings12091436
Nécira, B., & Abadou, Y. (2021). Properties of self-compacting mortar made with various mineralogical sources different types of sands and fillers. World Journal of Engineering, 18(6), 861–869. https://doi.org/10.1108/WJE-10-2020-0483
Olofinnade, O. M., Ndambuki, J. M., Ede, A. N., & Booth, C. (2017). Application of waste glass powder as a partial cement substitute towards more sustainable concrete production. International Journal of Engineering Research in Africa, 31. https://doi.org/10.4028/www.scientific.net/JERA.31.77
Rahman, M. A., Haque, S., … M. A.-… S. and P., & 2023, undefined. (2023). A review of environmental friendly green composites: production methods, current progresses, and challenges. Springer, 30(7), 16905–16929. https://doi.org/10.1007/s11356-022-24879-5
Ren, G., Gao, X., & Su, A. (2024). Application of sisal fiber powder in ultra-high performance concrete: A renewable material for mitigating autogenous shrinkage. Construction and Building Materials, 428, 136304. https://doi.org/10.1016/J.CONBUILDMAT.2024.136304
Rodier, L., & Savastano, H. (2018). Use of glass powder residue for the elaboration of eco-efficient cementitious materials. Journal of Cleaner Production, 184. https://doi.org/10.1016/j.jclepro.2018.02.269
Sales, R. B. C., Sales, F. A., Corrêa, E. C. S., De Oliveira Patricio, P. S., Mohallem, N. D. S., & Aguilar, M. T. P. (2015). Study of the influence of chemical composition on the pozzolanicity of soda-lime glass microparticles. Materials Research, 18. https://doi.org/10.1590/1516-1439.343914
Sara, B., Mhamed, A., Otmane, B., & Karim, E. (2023). Elaboration of a Self-Compacting mortar based on concrete demolition waste incorporating blast furnace slag. Construction and Building Materials, 366. https://doi.org/10.1016/j.conbuildmat.2022.130165
Zhou, C., Dai, F., Liu, Y., Wei, M., & Gai, W. (2024). Experimental assessment on the dynamic mechanical characteristics and cracking mechanism of hybrid basalt-sisal fiber reinforced concrete. Journal of Building Engineering, 88, 109151. https://doi.org/10.1016/J.JOBE.2024.109151
Downloads
Published
Issue
Section
License
Copyright (c) 2026 Nigerian Journal of Technological Development

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.
In accordance with the Copyright Act of 1976, which became effective January 1, 1978, the following statement signed by each author must accompany the manuscript submitted: "I, the undersigned author, transfer all copyright ownership of the manuscript referenced above to the Nigerian Journal of Technological Development, in the event the work is published. I warrant that the article is original, does not infringe upon any copyright or other proprietary right of any third party, is not under consideration by another journal, and has not been published previously. I have reviewed and approved the submitted version of the manuscript and agree to its publication in the Nigerian Journal of Technological Development." A copyright transfer form can be downloaded from the NJTD Website (http://njtd.com.ng/index.php/njtd). Author(s) will be consulted, whenever possible, regarding republication of material. All authors must have access to the data presented, and the authors and sponsor (if applicable) must agree to share original data with the editor if requested.
