Wang Lizhen, Xu Peng, Yin Huan, Yue Yanxian, Kang Wei, Liu Jinglong, Fan Yubo
Key Laboratory of Biomechanics and Mechanobiology (Beihang University), Ministry of Education, Beijing Advanced Innovation Center for Biomedical Engineering, School of Biological Science and Medical Engineering, School of Engineering Medicine, Beihang University, Beijing, 100083, China.
Adv Sci (Weinh). 2023 Sep;10(27):e2303238. doi: 10.1002/advs.202303238. Epub 2023 Jul 30.
Walnut shell is lightweight material with high-strength and toughening characteristics, but it is different from other nut shells' microstructure with two or three short sclerotic cell layers and long bundle fibers. It is essential to explore the fracture resistance biomechanism of lightweight walnut shell and how to prevent damage of bionic structure. In this study, it is found that the asymmetric mass center and geometric center dissipated impact energy to the whole shell without loading concentration in the loading area. Diaphragma juglandis is a special structure improved walnut shell's toughening. The S-shape gradient porosity/elastic modulus distribution combined with pits on single auxetic sclerotic cells requires higher energy to crack expansion, then decreases its fracture behavior. These fantastic findings inspire to design fracture resistance devices including helmets, armor, automobile anti-collision beams, and re-entry capsule in spacecraft.
核桃壳是一种具有高强度和增韧特性的轻质材料,但它与其他坚果壳的微观结构不同,后者具有两到三层短的硬化细胞层和长的束状纤维。探索轻质核桃壳的抗断裂生物力学机制以及如何防止仿生结构受损至关重要。在本研究中,发现不对称的质心和几何中心将冲击能量耗散到整个壳体,而不会在加载区域产生载荷集中。胡桃隔膜是一种特殊结构,可改善核桃壳的韧性。S形梯度孔隙率/弹性模量分布与单个负泊松比硬化细胞上的凹坑相结合,使裂纹扩展需要更高的能量,从而降低其断裂行为。这些奇妙的发现激发了人们设计抗断裂装置的灵感,包括头盔、装甲、汽车防撞梁和航天器的再入舱。