Machado Marcelo Vitor Ferreira, Lopes Felipe Perissé Duarte, Simonassi Noan Tonini, de Carvalho Eduardo Atem, Vieira Carlos Maurício Fontes, Monteiro Sergio Neves
Mechanical Engineering Department, Fluminense Federal Institute (IFF) and Nucleus of Studies in Applied Thermomechanics, Campos dos Goytacazes 28030-130, RJ, Brazil.
Advanced Materials Laboratory (LAMAV), Materials Science Department, State University of Northern Rio de Janeiro (UENF), Campos dos Goytacazes 28013-602, RJ, Brazil.
Polymers (Basel). 2025 Jul 31;17(15):2105. doi: 10.3390/polym17152105.
A literature review about polymer composites reveals that natural fibers have been widely used as a reinforcement phase in recent years. In this framework, the lignocellulosic fibers have received marked attention because of their environmental, thermomechanical, and economic advantages for many industrial sectors. This research aims to identify the impact behavior of ramie reinforced epoxy composites with medium- and high-volume fractions of fibers in intact (nonaged) and aged conditions as well as to analyze if the influence of interface quality on the impact fracture energy can be described by a novel mathematical model. To reach these objectives, the study is designed with three groups (40%, 50%, and 60% of fiber theoretical volume fractions) of intact specimens and three groups of aged samples by condensation and ultraviolet radiation (C-UV) simulation containing the same fiber percentages. Consecutively, impact strength and fracture surface analyses are done to expand the comprehension of the damage mechanisms suffered by the biocomposites and to support the development of the mathematical relation. Certainly, this novel model can contribute to more sustainable and greener industries in the near future.
一项关于聚合物复合材料的文献综述表明,近年来天然纤维已被广泛用作增强相。在此框架下,木质纤维素纤维因其对许多工业部门具有环境、热机械和经济优势而受到显著关注。本研究旨在确定具有中高体积分数纤维的苎麻增强环氧复合材料在完整(未老化)和老化条件下的冲击行为,以及分析界面质量对冲击断裂能的影响是否可以用一个新的数学模型来描述。为实现这些目标,该研究设计了三组(纤维理论体积分数分别为40%、50%和60%)完整试样以及三组通过冷凝和紫外线辐射(C-UV)模拟老化的样品,这些老化样品含有相同的纤维百分比。随后,进行冲击强度和断裂表面分析,以加深对生物复合材料所遭受损伤机制的理解,并支持数学关系的发展。当然,这个新模型在不久的将来可以为更可持续和更环保的产业做出贡献。