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天然昆虫角质层的硬度分布揭示了一种抗冲击策略。

Stiffness distribution in natural insect cuticle reveals an impact resistance strategy.

作者信息

Xing Yun, Yang Jialing

机构信息

Institute of Solid Mechanics, Beihang University, Beijing 100191, PR China.

Institute of Solid Mechanics, Beihang University, Beijing 100191, PR China.

出版信息

J Biomech. 2020 Aug 26;109:109952. doi: 10.1016/j.jbiomech.2020.109952. Epub 2020 Jul 15.

Abstract

In nature, many insects have evolved hard cuticles to shelter their soft body, which is thought to be the "body-armour" for insects to protect against predators' sharp teeth or dynamic load damage caused by harsh environments. In recent years, researchers have found that the "body-armour" is composed of multi-layer materials with different elastic modulus from inside to outside. The gradient change rule of the formed material modulus reflects the evolutionary history of insect cuticle's adaptation to external changes. In this article, the mechanical properties of spatial hierarchical architecture of insect cuticle, especially for the shield-like beetle elytra under impact loading, was investigated to reveal the impact resistance strategy and in-depth mechanisms of crashworthy protection. The results show that both discontinuity at the cuticle layers interface and the distributions of stiffness gradients through layers' thickness have a great influence on preventing stress wave propagation and improving impact-tolerance. Insect cuticle such as beetle elytra with discontinuous exponential stiffness gradient (DC-EXP) along the thickness has been identified to result in the minimum values of stress and interaction force under impact loading, which leads to the best impact resistance property and defensive effect. Furthermore, we compared and discussed the protective properties of insect elytra with different sclerotized endocuticle under quasi-static compression and impact loading, respectively. The knowledge gained from this work reveals the advantages of nature's choice of the stiffness distribution and may serve to inspire further research of developing advanced multifunctional structures with improved impact resistance capability by programming reasonable stiffness distribution.

摘要

在自然界中,许多昆虫进化出坚硬的角质层来保护其柔软的身体,角质层被认为是昆虫抵御捕食者尖牙或恶劣环境造成的动态载荷损伤的“护体甲胄”。近年来,研究人员发现,这种“护体甲胄”由从内到外具有不同弹性模量的多层材料组成。所形成的材料模量的梯度变化规律反映了昆虫角质层适应外部变化的进化历程。在本文中,研究了昆虫角质层空间层次结构的力学性能,特别是盾形甲虫鞘翅在冲击载荷下的力学性能,以揭示其抗冲击策略和耐撞保护的深入机制。结果表明,角质层各层界面处的不连续性以及沿层厚的刚度梯度分布,对阻止应力波传播和提高抗冲击能力有很大影响。已确定沿厚度具有不连续指数刚度梯度(DC - EXP)的甲虫鞘翅等昆虫角质层,在冲击载荷下会产生最小的应力值和相互作用力,从而具有最佳的抗冲击性能和防御效果。此外,我们分别比较和讨论了不同硬化内表皮的昆虫鞘翅在准静态压缩和冲击载荷下的保护性能。从这项工作中获得的知识揭示了自然界选择刚度分布的优势,并可能有助于激发进一步的研究,即通过规划合理的刚度分布来开发具有更高抗冲击能力的先进多功能结构。

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