4,109
Views
1
CrossRef citations to date
0
Altmetric
Review Article

A Review on False Banana (Enset Ventricosum) Fiber Reinforced Green Composite and Its Applications

ORCID Icon & ORCID Icon

References

  • Abuye, A., and H. Molla. 2020. Fabrication and characterization of false banana fiber reinforced gypsum composite. International Journal of Scientific & Engineering Research 11 (8):1568–17.
  • Adiraro, F., D. Tamana, D. Badas, and K. Balasundaram. 2020. Improving impact strength and water absorption properties of enset fiber reinforced polyester composite. International Journal of Advances in Scientific Research and Engineering 6 (6):138–43. doi:10.31695/IJASRE.2020.33838.
  • Alsuwait, R. B., M. Souiyah, I. Momohjimoh, S. A. Ganiyu, and A. O. Bakare. 2023. Recent development in the processing, properties, and applications of epoxy-based natural fiber polymer biocomposites. Polymers 15(1):145. doi:10.3390/polym15010145.
  • Ashik, K. P., and S. S. Ramesh. 2015. A review on mechanical properties of natural fiber reinforced hybrid polymer composites. Journal of Minerals and Materials Characterization and Engineering 3 (05):420–26. doi:10.4236/jmmce.2015.35044.
  • Balcha, D. T., B. Kulig, O. Hensel, and E. Woldesenbet. 2021. Mechanical properties of enset fibers obtained from different breeds of enset plant. World Academy of Science, Engineering and Technology International Journal of Aerospace and Mechanical Engineering 15 (1):7–14.
  • Baltazar-Y-Jimenez, A., and A. Bismarck. 2007. Wetting behaviour, moisture up-take and electrokinetic properties of lignocellulosic fibres. Cellulose 14:115–27. Springer. doi:10.1007/s10570-006-9092-x.
  • Batu, T., and G. L. Hirpa. 2021. Fatigue life study of false banana/glass fiber reinforced composite for wind turbine blade application. In Advanced manufacturing and automation X, ed. Y. Wang, K. Martinsen, T. Yu, and K. Wang, 29–40. Singapore: Springer Singapore. doi:10.1007/978-981-33-6318-2_4.
  • Batu, T., and H. G. Lemu. 2020. Results in materials investigation of mechanical properties of false banana/glass fi ber reinforced hybrid composite materials. Results in Materials. 8 (October):100152. Elsevier Ltd. doi:10.1016/j.rinma.2020.100152.
  • Begum, K., and M. Islam. 2013. Natural fiber as a substitute to synthetic fiber in polymer composites: A review. Research Journal of Engineering Sciences 2278:9472.
  • Bekele, A. E., H. G. Lemu, and M. G. Jiru. 2022. Exploration of mechanical properties of enset–sisal hybrid polymer composite. Fibers 10 (2). doi:10.3390/fib10020014.
  • Bekele, A. E., H. G. Lemu, and M. G. Jiru. 2023. Study of the effects of alkali treatment and fiber orientation on mechanical properties of enset/sisal polymer hybrid composite. Journal of Composites Science 7 (1):1–11. doi:10.3390/jcs7010037.
  • Berhanu, H., Z. Kiflie, I. Miranda, A. Lourenço, J. Ferreira, S. Feleke, A. Yimam, and H. Pereira. 2018. Characterization of crop residues from false banana/Ensete ventricosum/in Ethiopia in view of a full-resource valorization. PloS One. 13 (7):e0199422. Public Library of Science San Francisco, CA USA. doi:10.1371/journal.pone.0199422.
  • Berhanu, H., Z. Kiflie, and A. Yimam. 2019. Lignocellulose chemical and morphological analysis of enset (Ensete). Lignocellulose 5 (2):139–51. https://www.researchgate.net/publication/334284412.
  • Berhanu, H., D. Neiva, J. Gominho, Z. Kiflie, S. Feleke, A. Yimam, and H. Pereira. 2021. Bio ‑ Refinery potential of enset/Ensete ventricosum/fiber bundle using non ‑ Catalyzed and alkali catalyzed hydrothermal pretreatment. Waste and Biomass Valorization. 12 (2):663–72. Springer Netherlands. doi:10.1007/s12649-020-01015-3.
  • Beyene, T., M. E. K. Markos, T. Adugna Demissie, D. Van Hemelrijck, and T. Tysmans. 2021. Mechanical behavior of cement composites reinforced by aligned enset fibers. Construction and Building Materials 304 (August):124607. Elsevier Ltd. doi:10.1016/j.conbuildmat.2021.124607.
  • Biresaw, A. Z., B. Sirahbizu Yigezu, and A. Gloria. 2022. Investigation on the mechanical properties of flax/false banana hybrid fiber-reinforced polymer composite. Advances in Materials Science and Engineering 2022:1–7. doi:10.1155/2022/5696758.
  • Blomme, G., E. Kearsley, S. Buta, A. Chala, R. Kebede, T. Addis, and Z. Yemataw. 2023. Enset production system diversity across the Southern Ethiopian Highlands. Sustainability 15 (9):1–19. doi:10.3390/su15097066.
  • Borrell, J., R. Botanic Gardens, M. Kumar Biswas, G. Blomme, B. International, T. Schwarzacher, A. M. Wendawek, A. Berhanu, S. Kallow, and S. Janssens. 2019. Enset in Ethiopia: A poorly characterized but resilient starch staple enset in Ethiopia: A poorly characterized but resilient starch staple. Annals of Botany 123 (5):747–66. doi:10.1093/aob/mcy214.
  • Boset, L. D. 2019. Mechanical properties of false banana reinforced. Global Scientific Journal 7 (12):26–31.
  • Bos, H. L., M. J. A. Van Den Oever, and O. C. J. J. Peters. 2002. Tensile and compressive properties of flax fibres for natural fibre reinforced composites. Journal of Materials Science 37:1683–92. Springer. doi:10.1023/A:1014925621252.
  • Chaka, K. T., F. Etefa Ahmed, L. Haile Zegeye, and B. Gedif Worku. 2022. Compressive strength of floor tile composites from recycled PET reinforced with natural fibers. Journal of Natural Fibers 20 (1): Taylor & Francis. doi:10.1080/15440478.2022.2146249.
  • Dahy, H. 2017. Biocomposite materials based on annual natural fibres and biopolymers – Design, fabrication and customized applications in architecture. Construction and Building Materials 147:212–20. Elsevier Ltd. doi:10.1016/j.conbuildmat.2017.04.079.
  • Dayo, A. Q., B.-C. Gao, J. Wang, W.-B. Liu, M. Derradji, A. Hussain Shah, and A. Ahmed Babar. 2017. Natural hemp fiber reinforced polybenzoxazine composites: Curing behavior, mechanical and thermal properties. Composites Science and Technology 144:114–24. Elsevier. doi:10.1016/j.compscitech.2017.03.024.
  • Dejene, B. K., T. Belachew Fenta, and C. Godana Korra. 2022. Development of flame retardant cotton and acrylic blend textile fabric finish with enset pseudostem sap. Research Journal of Textile and Apparel 27:189–215. doi:10.1108/rjta-06-2021-0082.
  • Dejene, B. K., and T. Mamo Geletaw. 2023. A review of plant-mediated synthesis of zinc oxide nanoparticles for self-cleaning textiles. Research Journal of Textile and Apparel. doi:10.1108/RJTA-12-2022-0154.
  • Dessie, E., L. Fanxizi, T. Tesfaye, R. Kipchirchir Gideon, A. Dagnaw Gudayua, and Y. Qiu. 2022. Effect of silane treatment on tensile strength, moisture absorption and thermal property of unidirectional woven mat enset fibers reinforced polypropylene composite. Composite Interfaces. 29 (7):795–815. Taylor & Francis. doi:10.1080/09276440.2021.2015151.
  • Dessie, E., T. Tesfaye, L. Fanxizi, R. K. Gideon, and Y. Qiu. 2022. The effect of fibre position and gauge lengths along the length of enset bundle fibres on physical and mechanical properties: Application of statistics analysis. Journal of Natural Fibers 20:1–15. Taylor & Francis. doi:10.1080/15440478.2022.2150742.
  • Dessie, E., Q. Yiping, T. Tesfaye, R. Kipchirchir Gideon, and L. Fanxizi. 2022. Effect of surface treatment on the mechanical performance of unidirectional enset fiber reinforced polypropylene composite. Journal of Natural Fibers. 19 (14):9111–24. Taylor & Francis. doi:10.1080/15440478.2021.1982441.
  • Dungani, R., M. Karina, A. Sulaeman, A. H. Dede Hermawan, D. Hermawan, A. Hadiyane, and others. 2016. Agricultural waste fibers towards sustainability and advanced utilization: A review. Asian Journal of Plant Sciences 15 (1/2):42–55. Asian Network for Scientific Information. doi:10.3923/ajps.2016.42.55.
  • Dunne, R., D. Desai, R. Sadiku, and J. Jayaramudu. 2016. A review of natural fibres, their sustainability and automotive applications. Journal of Reinforced Plastics & Composites. 35 (13):1041–50. SAGE Publications Sage UK: London, England. doi:10.1177/0731684416633898.
  • Gebre, T., and J. Raj. 2016. Fabrication and study of mechanical properties for false banana and bamboo fibers reinforced bio-composites. International Journal of Advance Research in Science and Engineering 5 (5):338–51. www.ijarse.com.
  • Hoyur, S., and K. Çetinkaya. 2012. Production of banana/glass fiber bio – Composite profile and its bending strength. Journal of Material Sciences 1:43–49.
  • Joshi, S. V., L. T. Drzal, A. K. Mohanty, and S. Arora. 2004. Are natural fiber composites environmentally superior to glass fiber reinforced composites? Composites Part A, Applied Science and Manufacturing. 35 (3):371–76. Elsevier. doi:10.1016/j.compositesa.2003.09.016.
  • Kaur, D., N. Kant Bhardwaj, and R. Kumar Lohchab. 2017. Prospects of rice straw as a raw material for paper making. Waste Management 60:127–39. Elsevier. doi:10.1016/j.wasman.2016.08.001.
  • Kazmierski, C. 2012. Growth opportunities in global composites industry, 2012–2017. Composites 21–23.
  • Kimutai, S. K., Z. O. Siagi, and J. J. Kiptarus. 2014. Comparative study of composite made from ensete false banana fibres and polyethylene with block board. Journal of Energy Technologies and Policy 4 (12):48–54.
  • Mehamud, I., J. Raj, C. Zeleke, and T. Gebre. 2016. Fabrication and mechanical property evaluation of Ethiopia banana fiber reinforced polymer composites. Advances in Research 7 (5):1–10. doi:10.9734/AIR/2016/26991.
  • Mizera, C., D. Herak, P. Hrabe, M. Muller, and A. Kabutey. 2017. Mechanical behavior of Ensete ventricosum fiber under tension loading. Journal of Natural Fibers. 14 (2):287–96. Taylor & Francis. doi:10.1080/15440478.2016.1206500.
  • Mohammed, B., M. Gabel, and L. M. Karlsson. 2013. Nutritive Values of the Drought Tolerant Food and Fodder Crop Enset. African Journal of Agricultural Research. 8 (20):2326–33. Academic Journals. doi:10.5897/AJAR12.1296.
  • Monzón, M. D., R. Paz, M. Verdaguer, L. Suárez, P. Badalló, Z. Ortega, and N. Diaz. 2019. Experimental analysis and simulation of novel technical textile reinforced composite of banana fibre. Materials 12 (7). doi:10.3390/ma12071134.
  • Müller, M., P. Valášek, and A. Ruggiero. 2017. Strength characteristics of untreated short-fibre composites from the plant Ensete ventricosum. BioResources 12 (1):255–69. doi:10.15376/biores.12.1.255-269.
  • Negawo, T. A., Y. Polat, Y. Akgul, A. Kilic, and M. Jawaid. 2020. Mechanical and dynamic mechanical thermal properties of ensete fi ber/woven glass Fi ber fabric hybrid composites. Composite Structures (November): 113221. Elsevier Ltd. doi:10.1016/j.compstruct.2020.113221.
  • Negawo, T. A., Y. Polat, F. N. Buyuknalcaci, N. S. Ali Kilic, M. Jawaid, and M. Jawaid. 2018. Mechanical, morphological, structural and dynamic mechanical properties of alkali treated ensete stem fibers reinforced unsaturated polyester composites. Composite Structures 207:589–97. doi:10.1016/j.compstruct.2018.09.043.
  • Nurfeta, A., L. O. Eik, A. Tolera, and F. Sundstøl. 2008. Chemical Composition and in sacco dry matter degradability of different morphological fractions of 10 enset (Ensete Ventricosum) varieties. Animal Feed Science and Technology. 146 (1–2):55–73. Elsevier. doi:10.1016/j.anifeedsci.2007.12.003.
  • Saptarshi, M., M. Rashedul Islam, M. Abbas Uddin, S. Afroj, S. J. Eichhorn, and N. Karim. 2022. Sustainable fiber-reinforced composites: A review. Advanced Sustainable Systems 6 (11):2200258. doi:10.1002/adsu.202200258.
  • Singha, A. S., and R. K. Rana. 2012. Natural fiber reinforced polystyrene composites: Effect of fiber loading, fiber dimensions and surface modification on mechanical properties. Materials\& Design 41:289–97. Elsevier. doi:10.1016/j.matdes.2012.05.001.
  • Singh, S., N. Naik, N. Sooriyaperakasam, T. Iyer, C. Agarwal, J. Tirupathi, and M. Al Abdali. 2022. A comprehensive review of banana fiber-reinforced composites: properties, processing and applications. Journal of Computers, Mechanical and Management 1 (2):36–49. doi:10.57159/gadl.jcmm.1.2.22011.
  • Taj, S., M. Ali Munawar, and S. Khan. 2007. Natural fiber-reinforced polymer composites natural fiber-reinforced polymer composites. Pakistan Academy of Sciences 44 (2):129–44.
  • Tarno, H., Q. Hongye, R. Endoh, M. Kobayashi, H. Goto, and K. Futai. 2011. Types of frass produced by the ambrosia beetle platypus quercivorus during gallery construction, and host suitability of five tree species for the beetle. Journal of Forest Research. 16 (1):68–75. Taylor\& Francis. doi:10.1007/s10310-010-0211-z.
  • Teli, M. D., and J. M. Terega. 2017. Chemical, physical and thermal characterization of Ensete ventricosum plant fibre. International Research Journal of Engineering & Technology 4 (12):67–75.
  • Temesgen, A. G. 2019, June. False banana fiber process ability enhancement for composite and industrial process ability enhancement of false banana fiber alhayat getu institute of technology for textile, garment and fashion design. Textile and Apparel doi:10.13140/RG.2.2.35250.66243.
  • Temesgen, A. G., R. Eren, Y. Aykut, and F. SÜVARİ. 2021. Evaluation of enset fabric reinforced green composite as sound absorber structure. Tekstil ve Konfeksiyon 31 (2):73–81. doi:10.32710/tekstilvekonfeksiyon.688371.
  • Tuffa, A. C., T. Kenea Amentae, T. Balemi, and G. Gebresenbet. 2017. Assessment of post-harvest losses of warqe food products along the supply chain in central Ethiopia. African Journal of Agricultural Research. 12 (9):750–63. Academic Journals. doi:10.5897/AJAR2016.11824.
  • Wondmagegnehu, T., Z. A. Belay, G. Yohannes, and E. Gulte. 2022. Development and characterization of false banana (enset) fiber reinforced composite material. Journal of Natural Fibers 19 (15):12347–60. Taylor & Francis. doi:10.1080/15440478.2022.2057386.
  • Yerdawu, Z., G. K. Rotich, and A. Caggiano. 2021. Design and development of false ceiling board using polyvinyl acetate (pvac) composite reinforced with false banana fibres and filled with sawdust. International Journal of Polymer Science 2021:1–10. doi:10.1155/2021/5542329.
  • Yohannes, T., C. Beteley, T. Meshesha, S. Ahmed, and M. S. Anuradha. (2022). Production, characterization, and optimization of starch ‑ based biodegradable bioplastic from waste potato (Solanum tuberosum) peel with the reinforcement of false banana (Ensete Ventricosum) Fiber. Biomass Conversion and Biorefinery (123456789). Springer Berlin Heidelberg. doi:10.1007/s13399-022-03426-9.