B. Praveena, N. Santhosh, A. Buradi, H. V. Srikanth, G. Shankar, K. Ramesha, N. Manjunath, S. Karthik, M. Rudra Naik, S. Praveen Kumar
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With this basic purview and scope, the composites are synthesized using the hand layup process, and the composite samples of various fiber compositions (20%, 30%, 40%, and 50%) are fabricated. The mechanical characteristics of biodegradable polymer composites reinforced with areca nut leaf sheath fibers are investigated in the present work, with a focus on the effect of fiber composition (tensile properties, flexural strength, and impact strength). The properties of composites are enhanced by combining the areca nut leaf sheath fiber and epoxy resin, with a fiber content of 50% being the optimal wt%. The Scanning electron microscopy (SEM) investigations also ascertain this by depicting the good interfacial adhesion between the areca nut leaf sheath fiber and the epoxy resin. The tensile strength of the composite specimen reinforced with 50% areca nut fiber increases to 44.6 MPa, while the young’s modulus increases to 1900 MPa, flexural strength increases to 64.8 MPa, the flexural modulus increases to 37.9 GPa, and impact strength increases to 34.1 k J/m2. As a result, the combination of areca nut leaf sheath fiber reinforced epoxy resin shows considerable potential as a renewable and biodegradable polymer composite. Furthermore, areca nut leaf sheath fiber-reinforced epoxy resin composites are likely to replace petroleum-based polymers in the future. 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引用次数: 5
摘要
天然纤维增强聚合物复合材料是一个快速增长的研究主题,因为它可以简单地获得可生物降解和环保的复合材料。所得复合材料具有与合成纤维增强复合材料相当的机械性能。在这方面,本工作的目标是开发、表征和优化增强材料的wt%和工艺参数。这项工作的新颖性与槟榔叶鞘纤维基聚合物复合材料加工中适当wt%的增强材料和参数的识别和标准化有关,以提高性能。在这一基本范围内,使用手工叠层工艺合成了复合材料,并制备了各种纤维成分(20%、30%、40%和50%)的复合材料样品。研究了槟榔叶鞘纤维增强生物可降解聚合物复合材料的力学性能,重点研究了纤维组成(拉伸性能、弯曲强度和冲击强度)的影响。槟榔叶鞘纤维与环氧树脂的复合增强了复合材料的性能,纤维含量为50%是最佳的wt%。扫描电子显微镜(SEM)研究也通过描述槟榔叶鞘纤维和环氧树脂之间良好的界面粘附性来确定这一点。用50%槟榔纤维增强的复合材料试样的抗拉强度提高到44.6 MPa,而杨氏模量增加到1900 MPa,弯曲强度增加到64.8 MPa,弯曲模量增加到37.9 GPa,冲击强度增加到34.1 k 因此,槟榔叶鞘纤维增强环氧树脂的组合作为可再生和可生物降解的聚合物复合材料显示出相当大的潜力。此外,槟榔叶鞘纤维增强环氧树脂复合材料有可能在未来取代石油基聚合物。复合材料试样的生态可持续性和生物降解性以及改进的机械特性是本工作的主要亮点,可以帮助聚合物复合材料行业用天然纤维增强复合材料进一步增强合成基体和纤维基复合材料。
Experimental Investigation on Density and Volume Fraction of Void, and Mechanical Characteristics of Areca Nut Leaf Sheath Fiber-Reinforced Polymer Composites
Natural fiber-reinforced polymer composite is a rapidly growing topic of research due to the simplicity of obtaining composites that is biodegradable and environmentally friendly. The resulting composites have mechanical properties comparable to synthetic fiber-reinforced composites. In this regard, the present work is formulated with the objectives related to the development, characterization, and optimization of the wt% of reinforcements and the process parameters. The novelty of this work is related to the identification and standardization of the appropriate wt% of reinforcements and parameters for the processing of the areca nut leaf sheath fiber-based polymer composites for enhanced performance attributes. With this basic purview and scope, the composites are synthesized using the hand layup process, and the composite samples of various fiber compositions (20%, 30%, 40%, and 50%) are fabricated. The mechanical characteristics of biodegradable polymer composites reinforced with areca nut leaf sheath fibers are investigated in the present work, with a focus on the effect of fiber composition (tensile properties, flexural strength, and impact strength). The properties of composites are enhanced by combining the areca nut leaf sheath fiber and epoxy resin, with a fiber content of 50% being the optimal wt%. The Scanning electron microscopy (SEM) investigations also ascertain this by depicting the good interfacial adhesion between the areca nut leaf sheath fiber and the epoxy resin. The tensile strength of the composite specimen reinforced with 50% areca nut fiber increases to 44.6 MPa, while the young’s modulus increases to 1900 MPa, flexural strength increases to 64.8 MPa, the flexural modulus increases to 37.9 GPa, and impact strength increases to 34.1 k J/m2. As a result, the combination of areca nut leaf sheath fiber reinforced epoxy resin shows considerable potential as a renewable and biodegradable polymer composite. Furthermore, areca nut leaf sheath fiber-reinforced epoxy resin composites are likely to replace petroleum-based polymers in the future. The ecosustainability and biodegradability of the composite specimen alongside the improved mechanical characteristics serve as the major highlight of the present work, and can help the polymer composite industry to further augment the synthetic matrix and fiber-based composites with the natural fiber-reinforced composites.
期刊介绍:
The International Journal of Polymer Science is a peer-reviewed, Open Access journal that publishes original research articles as well as review articles on the chemistry and physics of macromolecules.