Laboratory of Bio-inspired and Graphene Nanomechanics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, via Mesiano 77, 38123 Trento, Italy.
School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, UK.
J R Soc Interface. 2018 Jul;15(144). doi: 10.1098/rsif.2018.0427.
Insect cuticle has drawn a lot of attention from engineers because of its multifunctional role in the life of insects. Some of these cuticles have an optimal combination of lightweight and good mechanical properties, and have inspired the design of composites with novel microstructures. Among these, beetle elytra have been explored extensively for their multilayered structure, multifunctional roles and mechanical properties. In this study, we investigated the bending properties of elytra by simulating their natural loading condition and comparing it with other loading configurations. Further, we examined the properties of their constitutive bulk layers to understand the contribution of each one to the overall mechanical behaviour. Our results showed that elytra are graded, multilayered composite structures that perform better in natural loading direction in terms of both flexural modulus and strength which is likely an adaptation to withstand loads encountered in the habitat. Experiments are supported by analytical calculations and finite element method modelling, which highlighted the additional role of the relatively stiff external exocuticle and of the flexible thin bottom layer in enhancing flexural mechanical properties. Such studies contribute to the knowledge of the mechanical behaviour of this natural composite material and to the development of novel bioinspired multifunctional composites and for optimized armours.
昆虫外骨骼因其在昆虫生活中的多功能作用而引起了工程师们的广泛关注。其中一些外骨骼具有轻量和良好机械性能的最佳组合,并启发了具有新颖微观结构的复合材料的设计。在这些外骨骼中,甲虫鞘翅被广泛探索,因为它们具有分层结构、多功能作用和机械性能。在这项研究中,我们通过模拟其自然加载条件并将其与其他加载配置进行比较来研究鞘翅的弯曲性能。此外,我们还研究了其组成的大块层的性质,以了解每个层对整体机械性能的贡献。我们的结果表明,鞘翅是分级的、多层复合材料结构,在自然加载方向上具有更好的弯曲模量和强度,这可能是为了适应在栖息地中遇到的负载而进行的适应。实验得到了分析计算和有限元方法建模的支持,这突出了相对较硬的外部表皮和灵活的薄底层在增强弯曲机械性能方面的额外作用。这些研究有助于了解这种天然复合材料的机械性能,并为新型仿生多功能复合材料和优化的装甲的发展提供了依据。