College of Aerospace Science and Engineering, National University of Defense Technology, 109 Deya Road, Changsha, 410073, Hunan, China.
College of Aerospace Science and Engineering, National University of Defense Technology, 109 Deya Road, Changsha, 410073, Hunan, China.
Acta Biomater. 2024 Mar 1;176:267-276. doi: 10.1016/j.actbio.2024.01.038. Epub 2024 Jan 29.
The Bouligand structure has been observed in a variety of biological materials, such as lamellar bone and exoskeleton of lobsters. It is a hierarchical and non-homogeneous architecture that exhibits excellent damage-resistant performance. This paper presents a multiscale fracture model considering the material inhomogeneity, the multiscale property, and the anisotropy to reveal the toughening mechanisms in the Bouligand structure. Firstly, the macro and micro constitutive properties of this composite are derived. Then, a multiscale fracture model is developed to characterize the local stress intensity factors and the energy release rates at the crack front of twisted cracks. Our results demonstrate that the decrease in the local energy release rate can be attributed to two-step mechanisms. The first mechanism is that the multiscale structure and the material inhomogeneity cause a release of stress near the initial crack tip. The second mechanism is that the twisted crack leads to the transformation from single-mode loading to mixed-mode loading, which enhances the fracture toughness. These results can not only reveal the toughening mechanism of the Bouligand structure but also provide guidelines for the design of high-performance composites. STATEMENT OF SIGNIFICANCE: Biological materials in nature often possess excellent mechanical properties that have not been achieved by synthetic materials. Bioinspired Bouligand structures provide prototypes for designing high-performance materials. In this study, we propose a multiscale theoretical fracture model to investigate the fracture properties of Bouligand structures with twisted cracks. We systematically consider the roles of material inhomogeneity, anisotropy, and multiscale properties. Our analysis demonstrates that the remarkable toughness of Bouligand structures results from the combined effects of material inhomogeneity and twisted cracks. This research contributes to unveiling the secret behind the outstanding toughness of Bouligand structures and provides inspiration for the development of novel designs for man-made composites.
博里干结构在多种生物材料中都有观察到,如板层骨和龙虾的外骨骼。它是一种具有分层和非均匀结构的架构,具有出色的抗损伤性能。本文提出了一种多尺度断裂模型,考虑了材料的非均匀性、多尺度特性和各向异性,以揭示博里干结构的增韧机制。首先,推导了该复合材料的宏观和微观本构特性。然后,建立了一个多尺度断裂模型,以描述扭曲裂纹前沿的局部应力强度因子和能量释放率。研究结果表明,局部能量释放率的降低可以归因于两步机制。第一种机制是多尺度结构和材料的非均匀性导致初始裂纹尖端附近的应力释放。第二种机制是扭曲裂纹导致从单模加载到混合模式加载的转变,从而提高了断裂韧性。这些结果不仅可以揭示博里干结构的增韧机制,还可以为高性能复合材料的设计提供指导。
自然界中的生物材料通常具有尚未通过合成材料实现的优异机械性能。仿生博里干结构为设计高性能材料提供了原型。在这项研究中,我们提出了一种多尺度理论断裂模型,用于研究具有扭曲裂纹的博里干结构的断裂特性。我们系统地考虑了材料非均匀性、各向异性和多尺度特性的作用。我们的分析表明,博里干结构的显著韧性源于材料非均匀性和扭曲裂纹的综合作用。这项研究有助于揭示博里干结构出色韧性的秘密,并为新型人造复合材料的设计提供启示。