Beijing Synchrotron Radiation Facility, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China.
School of Materials Science and Engineering, Ministry of Education, Southwest Jiaotong University, Chengdu, Sichuan 610031, People's Republic of China.
J Synchrotron Radiat. 2022 May 1;29(Pt 3):775-786. doi: 10.1107/S1600577522001217. Epub 2022 Mar 14.
The structure and mechanical properties of the stomatopod dactyl club have been studied extensively for its extreme impact tolerance, but a systematic in situ investigation on the multiscale mechanical responses under high-speed impact has not been reported. Here the full dynamic deformation and crack evolution process within projectile-impacted dactyl using combined fast 2D X-ray imaging and high-resolution ex situ tomography are revealed. The results show that hydration states can lead to significantly different toughening mechanisms inside dactyl under dynamic loading. A previously unreported 3D interlocking structural design in the impact surface and impact region is reported using nano X-ray tomography. Experimental results and dynamic finite-element modeling suggest this unique structure plays an important role in resisting catastrophic structural damage and hindering crack propagation. This work is a contribution to understanding the key toughening strategies of biological materials and provides valuable information for biomimetic manufacturing of impact-resistant materials in general.
十足目虾蛄的肢节螯的结构和力学性能因其具有极强的抗冲击能力而被广泛研究,但对于高速冲击下的多尺度力学响应,还没有系统的原位研究。本文通过结合快速二维 X 射线成像和高分辨率的体外层析成像,揭示了弹丸冲击肢节内的全动态变形和裂纹演化过程。结果表明,水合状态会导致在动态载荷下肢节内部表现出明显不同的增韧机制。利用纳米 X 射线层析成像,报告了在冲击表面和冲击区域存在一个以前未被报道的 3D 互锁结构设计。实验结果和动态有限元模拟表明,这种独特的结构在抵抗灾难性的结构损伤和阻碍裂纹扩展方面起着重要作用。这项工作有助于理解生物材料的关键增韧策略,并为一般抗冲击材料的仿生制造提供了有价值的信息。