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Mechanically robust bamboo node and its hierarchically fibrous structural design

delete2022-09-22
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OA
AI
S
Siming Chen
S
Sichao Zhang
H
Huai‐Ling Gao
Q
Quan Wang
L
Lichuan Zhou
H
Haoyu Zhao
X
Xinyu Li
M
Ming Gong
X
Xiaofeng Pan
崔晨 cover
崔晨 (Chen Cui)
Z
Zeyu Wang
张永亮 (Yongliang Zhang)
H
HengAn Wu
俞书宏 (Shu‐Hong Yu) *
DOI:10.1093/nsr/nwac195delete
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Abstract

Abstract

En 中文
Although short bamboo nodes function in mechanical support and fluid exchange for bamboo survival, their structures are not fully understood compared to unidirectional fibrous internodes. Here, we identify the spatial heterostructure of the bamboo node via multiscale imaging strategies and investigate its mechanical properties by multimodal mechanical tests. We find three kinds of hierarchical fiber reinforcement schemes that originate from the bamboo node, including spatially tightened interlocking, triaxial interconnected scaffolding and isotropic intertwining. These reinforcement schemes, built on porous vascular bundles, microfibers and more-refined twist-aligned nanofibers, govern the structural stability of the bamboo via hierarchical toughening. In addition, the spatial liquid transport associated with these multiscale fibers within the bamboo node is experimentally verified, which gives perceptible evidence for life-indispensable multidirectional fluid exchange. The functional integration of mechanical reinforcement and liquid transport reflects the fact that the bamboo node has opted for elaborate structural optimization rather than ingredient richness. This study will advance our understanding of biological materials and provide insight into the design of fiber-reinforced structures and biomass utilization. Mechanical reinforcement schemes and underlying mechanisms within the sophisticated multiscale fibrous structure of one bamboo node have been discovered, providing insight into engineering structural material design and biomass utilization.
Keywords:
biological materials
bamboo node
hierarchical fiber
structural reinforcement
functional integration
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Journal

National Science Review cover
National Science Review
IF:
17.1
Papers:
3.6K
Citations:
2.0W

Organization

U
university of science & technology of china, cas
Scholars:
3.2W
Papers: 2.7W
Citations: 74
C
chinese academy of sciences
Scholars:
56.1W
Papers: 44.8W
Citations: 704