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应变速率和各向异性微观结构对家蚕茧壳力学行为的影响

Strain Rate and Anisotropic Microstructure Dependent Mechanical Behaviors of Silkworm Cocoon Shells.

作者信息

Xu Jun, Zhang Wen, Gao Xiang, Meng Wanlin, Guan Juan

机构信息

Department of Automotive Engineering, School of Transportation Science and Engineering, Beihang University, Beijing, China.

Advanced Vehicle Research Center, Beihang University, Beijing, China.

出版信息

PLoS One. 2016 Mar 3;11(3):e0149931. doi: 10.1371/journal.pone.0149931. eCollection 2016.

Abstract

Silkworm cocoons are multi-layered composite structures comprised of high strength silk fiber and sericin, and their mechanical properties have been naturally selected to protect pupas during metamorphosis from various types of external attacks. The present study attempts to gain a comprehensive understanding of the mechanical properties of cocoon shell materials from wild silkworm species Antheraea pernyi under dynamic loading rates. Five dynamic strain rates from 0.00625 s-1 to 12.5 s-1 are tested to show the strain rate sensitivity of the cocoon shell material. In the meantime, the anisotropy of the cocoon shell is considered and the cocoon shell specimens are cut along 0°, 45° and 90° orientation to the short axis of cocoons. Typical mechanical properties including Young's modulus, yield strength, ultimate strength and ultimate strain are extracted and analyzed from the stress-strain curves. Furthermore, the fracture morphologies of the cocoon shell specimens are observed under scanning electron microscopy to help understand the relationship between the mechanical properties and the microstructures of the cocoon material. A discussion on the dynamic strain rate effect on the mechanical properties of cocoon shell material is followed by fitting our experimental results to two previous models, and the effect could be well explained. We also compare natural and dried cocoon materials for the dynamic strain rate effect and interestingly the dried cocoon shells show better overall mechanical properties. This study provides a different perspective on the mechanical properties of cocoon material as a composite material, and provides some insight for bio-inspired engineering materials.

摘要

蚕茧是由高强度丝纤维和丝胶组成的多层复合结构,其机械性能经过自然选择,可在变态过程中保护蛹免受各种外部攻击。本研究旨在全面了解野生蚕种柞蚕茧壳材料在动态加载速率下的机械性能。测试了从0.00625 s-1到12.5 s-1的五种动态应变率,以显示茧壳材料的应变率敏感性。同时,考虑了茧壳的各向异性,将茧壳试样沿与茧短轴成0°、45°和90°的方向切割。从应力-应变曲线中提取并分析了包括杨氏模量、屈服强度、极限强度和极限应变在内的典型机械性能。此外,在扫描电子显微镜下观察茧壳试样的断裂形态,以帮助理解茧材料的机械性能与微观结构之间的关系。在将我们的实验结果与之前的两个模型拟合之后,对动态应变率对茧壳材料机械性能的影响进行了讨论,并且可以很好地解释这种影响。我们还比较了天然茧和干燥茧材料的动态应变率效应,有趣的是,干燥的茧壳显示出更好的整体机械性能。本研究为茧材料作为复合材料的机械性能提供了不同的视角,并为生物启发工程材料提供了一些见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd72/4777412/5885298c9d08/pone.0149931.g001.jpg

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