e-ISSN 2231-8526
ISSN 0128-7680
Azrul Affandhi Musthaffa, Norazman Mohamad Nor, Abdulrahman Alhayek, Mohammed Alias Yusof and Mohd Yuhazri Yaakob
Pertanika Journal of Science & Technology, Volume 32, Issue 5, August 2024
DOI: https://doi.org/10.47836/pjst.32.5.24
Keywords: Bamboo girder, finite element method, simulation, sustainability
Published on: 26 August 2024
This study uses numerical simulation to explore the performance of a portable bamboo girder designed for emergency scenarios and compares it to its steel counterpart. It underscores bamboo’s appeal, offering a lightweight, quickly deployable, and eco-friendly alternative to steel. The research aims to assess bamboo’s viability in emergency bridge construction, utilising SOLIDWORKS and ANSYS to create and simulate bamboo and steel girders. A bamboo girder aimed at humanitarian assistance and disaster relief (HADR) operations was analysed through ANSYS software under a Toyota Hilux truck’s weight. Material properties, loads, and boundary conditions were defined for an accurate simulation. Three individual bamboo culms were tested in four-point flexural experiments, and the results revealed a modulus of elasticity of 14583 MPa and a local failure due to crushing and splitting with an ultimate strength of 263 MPa. Finite element analysis results indicated that the bamboo girder had a stress of 85.56 MPa and a deflection of 84.68 mm. Although the steel girder showed lower deflection, it had significantly higher stresses and weighed 180% more than the bamboo version. The bamboo girder’s deflection surpassed the recommended limit under a fully loaded truck, indicating room for improvement. However, stress analysis revealed that the bamboo’s structural integrity remained below its design strength. Conversely, the steel girder exhibited higher stresses and considerably greater weight. Despite deflection concerns, the bamboo girder demonstrated structural soundness and lower weight compared to steel. This positions it as a viable solution for swift emergency deployment, warranting further refinement for enhanced performance.
Akinlabi, E. T., Anane-Fenin, K., & Akwada, D. R. (2017). Bamboo the multipurpose plant. Springer International Publishing. https://doi.org/10.1007/978-3-319-56808-9
Amede, E. A., Hailemariama, E. K., Hailemariam, L. M., & Nuramo, D. A. (2021). A review of codes and standards for bamboo structural design. Advances in Materials Science and Engineering, 2021, Article 4788381. https://doi.org/10.1155/2021/4788381
Ansys Inc. (2017). ANSYS theory reference (Release 18.2). https://www.ansys.com/
Auwalu, F. K., & Dickson, P. D. (2019). Bamboo as a sustainable material for building construction in Nigeria. Civil and Environmental Research, 11(8), 30–36. https://doi.org/10.7176/CER/11-8-03
Bahari, S. A., & Krause, A. (2016). Utilizing Malaysian bamboo for use in thermoplastic composites. Journal of Cleaner Production, 110, 16–24. https://doi.org/10.1016/j.jclepro.2015.03.052
Chung, K. F., & Yu, W. K. (2002). Mechanical properties of structural bamboo for bamboo scaffoldings. Engineering Structures, 24(4), 429–442. https://doi.org/10.1016/S0141-0296(01)00110-9
Egoh, A., Reed, K. S., & Kalu, P. N. (2020). A review of the current status of bamboo usage with special emphasis on orthopedic rehabilitation. Materials Sciences and Applications, 11(07), 415–430. https://doi.org/10.4236/msa.2020.117028
ISO 22157-2:2004. (2004). Bamboo-Determination of physical and mechanical properties-Part 2: Laboratory manual. https://www.iso.org/standard/38360.html
Liu, K. W., Xu, Q. F., Wang, G., Chen, F. M., Leng, Y. B., Yang, J., & Harries, K. A. (2022). Types and characteristics of bamboo materials for construction uses. In K. W. Liu, Q. F. Xu, G. Wang, F. M. Chen, Y. B. Leng, J. Yang & K. A. Harries (Eds.), Contemporary Bamboo Architecture in China (pp. 7–30). Springer. https://doi.org/10.1007/978-981-16-8309-1_2
Liu, W., Hui, C., Wang, F., Wang, M., & Liu, G. (2018). Review of the resources and utilization of bamboo in China. In Khalil H. P. S. A. (Ed.), Bamboo - Current and Future Prospects (pp. 133-142). IntechOpen. https://doi.org/10.5772/intechopen.76485
Musthaffa, A. A., Nor, N. M., Yusof, M. A., & Yuhazri, M. Y. (2018). New conceptual design of portable bamboo bridge for emergency purposes. AIP Conference Proceedings, 1930(1), Article 20043. https://doi.org/10.1063/1.5022937
Najeeb, M. I., Syamsir, A., Amir, S. M. M., Khan, T., & Sebaey, T. A. (2023). Failure analysis of plant fibre-reinforced composite in civil building materials using non-destructive testing methods: Current and future trend. Journal of Natural Fibers, 20(2), Article 2246654. https://doi.org/10.1080/15440478.2023.2246654
Rahman, M. A., Haque, S., Athikesavan, M. M., & Kamaludeen, M. B. (2023). A review of environmental friendly green composites: Production methods, current progresses, and challenges. Environmental Science and Pollution Research, 30(7), 16905–16929. https://doi.org/10.1007/s11356-022-24879-5
Rong, K., Ekeland, A., Shao, C., Zhang, Y., & Shangguan, S. (2022). Bamboo bridges: A nature-based Solution. Green Building & Construction Economics, 3(1), 12–26. https://doi.org/10.37256/gbce.3120221307
Salzer, C., Wallbaum, H., Lopez, L. F., & Kouyoumji, J. L. (2016). Sustainability of Social housing in asia: A holistic multi-perspective development process for bamboo-based construction in the Philippines. Sustainability, 8(2), Article 151. https://doi.org/10.3390/su8020151
Technical Committee CEN. (2003). Eurocode 1: Actions on structures - Part 2: Traffic loads on bridges. https://knowledge.bsigroup.com/products/eurocode-1-actions-on-structures-traffic-loads-on-bridges
Yan, X., Quan, Z., & Bo, S. (2010). Design and construction of modern bamboo bridges. Journal of Bridge Engineering, 15(5), 533–541. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000089
Yang, D., Li, H., Xiong, Z., Mimendi, L., Lorenzo, R., Corbi, I., Corbi, O., & Hong, C. (2020). Mechanical properties of laminated bamboo under off-axis compression. Composites Part A: Applied Science and Manufacturing, 138, Article 106042. https://doi.org/10.1016/j.compositesa.2020.106042
ISSN 0128-7680
e-ISSN 2231-8526