蚕茧的抗撕裂性模式 III

IF 5.7 Q2 CHEMISTRY, PHYSICAL
Ateeq Ur Rehman, Vasileios Koutsos and Parvez Alam*, 
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引用次数: 0

摘要

本文涉及森蚕丝茧的撕裂特性和行为。研究发现,从最内层到最外层,茧层的抗撕裂强度逐渐增加。重要的是,抗撕裂强度的增加与孔隙率的增加有关,而孔隙率本身会影响纤维的流动性。我们提出了撕裂破坏的微观结构机理,首先是纤维拉伸和滑动,导致纤维堆积,最终导致纤维断裂。然后,断裂方向被认为是纤维堆积方向的函数,而纤维堆积方向受纤维以不同角度交叉的交界处的影响,这些交界处可能成为纤维堆积的成核点。森氏蚕茧茧壁各层之间的界面占茧壁总撕裂强度的 38%。在将森蚕茧壁的撕裂能和密度与其他材料进行比较时,我们发现森蚕茧壁在抗撕裂性和轻质性之间实现了平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mode III Tear Resistance of Bombyx mori Silk Cocoons

Mode III Tear Resistance of Bombyx mori Silk Cocoons

Mode III Tear Resistance of Bombyx mori Silk Cocoons

This paper concerns the tear properties and behavior of Bombyx mori (B. Mori) silk cocoons. The tear resistance of cocoon layers is found to increase progressively from the innermost layer to the outermost layer. Importantly, the increase in tear strength correlates with increased porosity, which itself affects fiber mobility. We propose a microstructural mechanism for tear failure, which begins with fiber stretching and sliding, leading to fiber piling, and eventuating in fiber fracture. The direction of fracture is then deemed to be a function of the orientation of piled fibers, which is influenced by the presence of junctions where fibers cross at different angles and which may then act as nucleating sites for fiber piling. The interfaces between cocoon wall layers in B. mori cocoon walls account for 38% of the total wall tear strength. When comparing the tear energies and densities of B. mori cocoon walls against other materials, we find that the B. mori cocoon walls exhibit a balanced trade-off between tear resistance and lightweightness.

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来源期刊
ACS Materials Au
ACS Materials Au 材料科学-
CiteScore
5.00
自引率
0.00%
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0
期刊介绍: ACS Materials Au is an open access journal publishing letters articles reviews and perspectives describing high-quality research at the forefront of fundamental and applied research and at the interface between materials and other disciplines such as chemistry engineering and biology. Papers that showcase multidisciplinary and innovative materials research addressing global challenges are especially welcome. Areas of interest include but are not limited to:Design synthesis characterization and evaluation of forefront and emerging materialsUnderstanding structure property performance relationships and their underlying mechanismsDevelopment of materials for energy environmental biomedical electronic and catalytic applications
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