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Physical and Mechanical Properties of Laminated Board from Betung Bamboo (Dendrocalamus asper)

  • Received : 2024.03.05
  • Accepted : 2024.05.02
  • Published : 2024.07.25

Abstract

Laminated bamboo is an engineered bamboo technology to maintain its mechanical durability for both construction and furniture materials. This study was conducted to assess the properties of laminated bamboo made from Betung bamboo at different culm positions and laminate orientations. The materials used in this study were 4-year Betung bamboo (Dendrocalamus asper) obtained from a community forest in Yogyakarta and polyvinyl acetate resin as adhesive. Two factors were applied for this study, i.e., culm position (lower, middle, and upper) and laminate orientations (vertical and horizontal direction). To examine the mechanical properties, a static bending test and the hardness test were performed in accordance with ASTM D1037-99. Moisture content and density were determined in accordance with BS 373-1957. The results indicated that there was no interaction between the culm position and laminate orientation on the moisture content, density, static bending properties and hardness. The culm position affected the static bending and hardness, with the higher position of the culm resulting a greater strength. The laminate orientation also affected the strength of laminated bamboo, with the vertical direction resulting in higher strength than the horizontal.

Keywords

Acknowledgement

The authors would like to thank Universitas Gadjah Mada for funding this research project through Indonesian Research Collaboration based on contract number of 2658/UN1/DITLIT/Dit-Lit/PT.01.03/2023. The comments and suggestions from anonymous reviewers are greatly acknowledged.

References

  1. Adam, N., Jusoh, I. 2019. Physical and mechanical properties of Dendrocalamus asper and Bambusa vulgaris. Transactions on Science and Technology 6(1-2): 95-101.
  2. Aini, N., Morisco, Anita, A. 2009. Pengaruh pengawetan terhadap kekuatan dan keawetan produk laminasi bambu. Forum Teknik Sipil 19(1): 979-986.
  3. American Society for Testing and Materials [ASTM]. 1999. Standard Test Methods for Evaluating Properties of Wood-Base Fiber and Particle Panel Materials. ASTM D1037-99. ASTM International, Philadelphia, PA, USA.
  4. Arsyad, W.O.M., Efiyanti, L., Trisatya, D.R. 2020. Termiticidal activity and chemical components of bamboo vinegar against subterranean termites under different pyrolysis temperatures. Journal of the Korean Wood Science and Technology 48(5): 641-650. https://doi.org/10.5658/WOOD.2020.48.5.641
  5. Bowyer, J.L., Shmulsky, R., Haygreen, J.G. 2007. Forest Products and Wood Science: An Introduction. Wiley-Blackwell, Hoboken, NJ, USA.
  6. British Standards Institution [BSI]. 1957. Methods of Testing Small Clear Specimens of Timber. BS 373. British Standards Institution, London, UK.
  7. Cahyono, T.D., Darmawan, W., Priadi, T., Iswanto, A.H. 2020. Flexural properties of heat-treatment samama (Anthocephalus macrophyllus) wood impregnated by boron and methyl metacrylate. Journal of the Korean Wood Science and Technology 48(1): 76-85. https://doi.org/10.5658/WOOD.2020.48.1.76
  8. Darwis, A., Hadiyane, A., Sulistyawati, E., Sumardi, I. 2023. Effect of vascular bundles and fiber sheaths in nodes and internodes of Gigantochloa apus bamboo strips on tensile strength. Journal of the Korean Wood Science and Technology 51(4): 309-319. https://doi.org/10.5658/WOOD.2023.51.4.309
  9. Galih, N.M., Yang, S.M., Yu, S.M., Kang, S.G. 2020. Study on the mechanical properties of tropical hybrid cross laminated timber using bamboo laminated board as core layer. Journal of the Korean Wood Science and Technology 48(2): 245-252. https://doi.org/10.5658/WOOD.2020.48.2.245
  10. Guan, X., Yin, H., Lin, C., Zhan, W. 2022. Effect of layups on the mechanical properties of overlaid laminated bamboo lumber made of radial bamboo slices. Journal of Wood Science 68(1): 40.
  11. Irawati, I.S., Saputra, A. 2012. Analisis statistik sifat mekanika bambu petung (Dendrocalamus asper). In: Yogyakarta, Indonesia, Prosiding Simposium Nasional Rekayasa dan Budidaya Bambu I 2012.
  12. Janssen, J.J.A. 2000. Designing and Building with Bamboo. International Network for Bamboo and Rattan, Beijing, China.
  13. Javadian, A., Smith, I.F.C., Saeidi, N., Hebel, D.E. 2019. Mechanical properties of bamboo through measurement of culm physical properties for composite fabrication of structural concrete reinforcement. Frontiers in Materials 6: 31-41. https://doi.org/10.3389/fmats.2019.00031
  14. Kariuki, J., Nyomboi, T., Mumenya, S. 2014. Effect of orientation and arrangement of bamboo strips on structural strength of laminated bamboo beam. International Journal of Engineering Sciences and Emerging Technologies 7(2): 555-567.
  15. Kasmudjo. 2013. Rotan dan Bambu, Kelapa, Kelapa Sawit, Nipah, Sagu. Cakrawala Media, Yogyakarta, Indonesia.
  16. Kim, Y.J., Roh, J.K., Park, S.J. 2003. Effect of zephyr producing method on properties of bamboo zephyr boards. Journal of the Korean Wood Science and Technology 31(4): 24-30.
  17. Lee, H.W., Lee, E.J. 2021. Effects of hot-air heat treatment on the surface color of Phyllostachys bambusoides bamboo. Journal of the Korean Wood Science and Technology 49(6): 566-573. https://doi.org/10.5658/WOOD.2021.49.6.566
  18. Lee, M.D., Tang, R.W.C., Michael, Z., Khairulmaini, M., Roslan, A., Khodori, A.F., Sharudin, H., Lee, P.S. 2024. Physical and mechanical properties of light red meranti treated with boron preservatives. Journal of the Korean Wood Science and Technology 52(2): 157-174. https://doi.org/10.5658/WOOD.2024.52.2.157
  19. Liese, W. 1985. Bamboos: Biology, Silvics, Properties, Utilization. Schriftenreihe der Gesellschaft fur Technische Zusammenarbeit, Eschborn, Germany.
  20. Maulana, M.I., Jeon, W.S., Purusatama, B.D., Kim, J.H., Prasetia, D., Yang, G.U., Savero, A.M., Nawawi, D., Nikmatin, S., Sari, R.K., Febrianto, F., Lee, S.H., Kim, N.H. 2022. Anatomical characteristics for identification and quality indices of four promising commercial bamboo species in Java, Indonesia. BioResources 17(1): 1442-1453. https://doi.org/10.15376/biores.17.1.1442-1453
  21. Maulana, M.I., Murda, R.A., Purusatama, B.D., Sari, R.K., Nawawi, D.S., Nikmatin, S., Hidayat, W., Lee, S.H., Febrianto, F., Kim, N.H. 2021. Effect of alkali-washing at different concentration on the chemical compositions of the steam treated bamboo strands. Journal of the Korean Wood Science and Technology 49(1): 14-22. https://doi.org/10.5658/WOOD.2021.49.1.14
  22. Morisco. 2006. Teknologi Bambu. Universitas Gadjah Mada, Yogyakarta, Indonesia.
  23. Nugroho, N., Ando, N. 2001. Development of structural composite products made from bamboo II: Fundamental properties of laminated bamboo lumber. Journal of Wood Science 47(3): 237-242. https://doi.org/10.1007/BF01171228
  24. Oka, G.M., Triwiyono, A., Awaludin, A., Siswosukarto, S. 2014. Effects of node, internode and height position on the mechanical properties of Gigantochloa atroviolacea bamboo. Procedia Engineering 95: 31-37.
  25. Praptoyo, H., Yogasara, A. 2012. Sifat anatomi bambu ampel (Bambusa vulgaris Schard.) pada arah aksial dan radial. In: Makassar, Indonesia, Prosiding Seminar Nasional Masyarakat Peneliti Kayu Indonesia (MAPEKI) XV, pp. 24-32.
  26. Putri, A.R., Alam, N., Adzkia, U., Amin, Y., Darmawan, I.W., Karlinasari, L. 2023. Physical and mechanical properties of oriented flattened bamboo boards from Ater (Gigantochloa atter) and Betung (Dendrocalamus asper) bamboos. Jurnal Sylva Lestari 11(1):1-21. https://doi.org/10.23960/jsl.v11i1.614
  27. Qi, Y., Huang, Y.X., Ma, H.X., Yu, W.J., Kim, N.H., Zhang, Y.H. 2019. Influence of a novel mold inhibitor on mechanical properties and water repellency of bamboo fiber-based composites. Journal of the Korean Wood Science and Technology 47(3): 336-343. https://doi.org/10.5658/WOOD.2019.47.3.336
  28. Qisheng, Z., Shenxue, J., Yongyu, T. 2002. Industrial Utilization on Bamboo. International Network for Bamboo and Rattan (INBAR), Beijing, China.
  29. Raj, A.D., Agarwal, B. 2014. Bamboo as a building material. Journal of Civil Engineering and Environmental Technology 1(3): 56-61.
  30. Setyo, N.I.H., Satyarno, I., Sulistyo, D., Prayitno, T.A. 2014. Sifat mekanika bambu petung laminasi. Dinamika Rekayasa 10(1): 6-13.
  31. Sharma, B., Gatoo, A., Bock, M., Ramage, M. 2015. Engineered bamboo for structural applications. Construction and Building Materials 81: 66-73. https://doi.org/10.1016/j.conbuildmat.2015.01.077
  32. Sulistyawati, C.A. 1997. Teknologi pengawetan bambu. Wacana 6: 11-13.
  33. Sumardi, I., Alamsyah, E.M., Suhaya, Y., Dungani, R., Sulastiningsih, I.M., Pramestie, S.R. 2022. Development of bamboo zephyr composite and the physical and mechanical properties. Journal of the Korean Wood Science and Technology 50(2): 134-147. https://doi.org/10.5658/WOOD.2022.50.2.134
  34. Sumardi, I., Daru, A.K.D., Rumidatul, A., Dungani, R., Suhaya, Y., Prihanto, N., Hartono, R. 2024. Drying efficiency of betung bamboo strips (Dendrocalamus asper) based on different solar drying oven designs. Journal of the Korean Wood Science and Technology 52(1): 1-12. https://doi.org/10.5658/WOOD.2024.52.1.1
  35. Sumawa, I.W.A.M., Awaluddin, A., Irawati, I.S. 2019. Pengaruh bahan pengawet boraks dan ekstrak tembakau terhadap perilaku rekatan bambu laminasi perekat polymer isocyanate. Jurnal Permukiman 14(2): 104-111. https://doi.org/10.31815/jp.2019.14.104-111
  36. Tho, D.F., Morisco. 2008. Perilaku mekanika papan laminasi bambu petung dari Kab. Ngada prop. NTT terhadap beban lateral dengan variasi susunan bilah. Ph.D. Thesis, Universitas Gadjah Mada, Indonesia.