Seculi Faust, Espinach Francesc X, Julián Fernando, Delgado-Aguilar Marc, Mutjé Pere, Tarrés Quim
LEPAMAP-PRODIS Research Group, University of Girona, 17003 Girona, Spain.
Polymers (Basel). 2023 Feb 22;15(5):1096. doi: 10.3390/polym15051096.
The use of bio-based matrices together with natural fibers as reinforcement is a strategy for obtaining materials with competitive mechanical properties, costs, and environmental impacts. However, bio-based matrices, unknown by the industry, can be a market entry barrier. The use of bio-polyethylene, which has properties similar to polyethylene, can overcome that barrier. In this study, composites reinforced with abaca fibers used as reinforcement for bio-polyethylene and high density polyethylene are prepared and tensile tested. A micromechanics analysis is deployed to measure the contributions of the matrices and reinforcements and to measure the evolution of these contributions regarding AF content and matrix nature. The results show that the mechanical properties of the composites with bio-polyethylene as a matrix were slightly higher than those of the composites with polyethylene as a matrix. It was also found that the contribution of the fibers to the Young's moduli of the composites was susceptible to the percentage of reinforcement and the nature of the matrices. The results show that it is possible to obtain fully bio-based composites with mechanical properties similar to those of partially bio-based polyolefin or even some forms of glass fiber-reinforced polyolefin.
使用生物基基体与天然纤维作为增强材料是一种获取具有竞争力的机械性能、成本和环境影响的材料的策略。然而,行业尚不了解的生物基基体可能成为市场进入障碍。使用具有与聚乙烯相似性能的生物聚乙烯可以克服这一障碍。在本研究中,制备了以蕉麻纤维作为生物聚乙烯和高密度聚乙烯增强材料的复合材料,并进行了拉伸测试。采用微观力学分析来测量基体和增强材料的贡献,并测量这些贡献随蕉麻纤维含量和基体性质的变化。结果表明,以生物聚乙烯为基体的复合材料的机械性能略高于以聚乙烯为基体的复合材料。还发现,纤维对复合材料杨氏模量的贡献易受增强材料百分比和基体性质的影响。结果表明,有可能获得具有与部分生物基聚烯烃甚至某些形式的玻璃纤维增强聚烯烃相似机械性能的全生物基复合材料。