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巨杉树皮和树皮纤维在高能量冲击下的保护作用。

The Protective Role of Bark and Bark Fibers of the Giant Sequoia () during High-Energy Impacts.

机构信息

Plant Biomechanics Group Freiburg, Botanic Garden of the University of Freiburg, University of Freiburg, Schänzlestraße 1, D-79104 Freiburg, Germany.

FIT - Freiburg Center for Interactive Materials and Bioinspired Technologies, University of Freiburg (FIT), Georges-Köhler-Allee 105, D-79110 Freiburg, Germany.

出版信息

Int J Mol Sci. 2020 May 9;21(9):3355. doi: 10.3390/ijms21093355.

Abstract

The influences of (1) a high fiber content, (2) the arrangement of fibers in fiber groups, and (3) a layered hierarchical composition of the bark of the giant sequoia () on its energy dissipation capability are analyzed and discussed regarding the relevance for an application in bioinspired components in civil engineering. The giant sequoia is native to the Sierra Nevada (USA), a region with regular rockfalls. It is thus regularly exposed to high-energy impacts, with its bark playing a major protective role, as can be seen in the wild and has been proven in laboratory experiments. The authors quantify the fundamental biomechanical properties of the bark at various length scales, taking into account its hierarchical setup ranging from the integral level (whole bark) down to single bark fibers. Microtensile tests on single fibers and fiber pairs give insights into the properties of single fibers as well as the benefits of the strong longitudinal interconnection between single fibers arranged in pairs. Going beyond the level of single fibers or fiber pairs, towards the integral level, quasistatic compression tests and dynamic impact tests are performed on samples comprising the whole bark (inner and outer bark). These tests elucidate the deformation behavior under quasistatic compression and dynamic impact relevant for the high energy dissipation and impact-damping behavior of the bark. The remarkable energy dissipation capability of the bark at the abovementioned hierarchical levels are linked to the layered and fibrous structure of the bark structurally analyzed by thin sections and SEM and µCT scans.

摘要

分析和讨论了巨型红杉树皮的(1)高纤维含量、(2)纤维在纤维组中的排列方式、(3)分层层次结构对其能量耗散能力的影响,因为这与在土木工程中仿生组件的应用有关。巨型红杉原产于内华达山脉(美国),那里经常发生落石。因此,它经常受到高能量冲击的影响,其树皮起着主要的保护作用,这在野外可以看到,并已在实验室实验中得到证明。作者在不同的长度尺度上量化了树皮的基本生物力学特性,考虑了其从整体水平(整个树皮)到单个树皮纤维的分层结构。对单个纤维和纤维对进行微拉伸测试,深入了解了单个纤维的特性以及成对排列的单个纤维之间强纵向互连的好处。超越单个纤维或纤维对的水平,达到整体水平,对包含整个树皮(内树皮和外树皮)的样品进行准静态压缩试验和动态冲击试验。这些测试阐明了与树皮的高能量耗散和冲击阻尼性能相关的准静态压缩和动态冲击下的变形行为。通过薄片和 SEM 以及µCT 扫描对树皮的分层和纤维结构进行结构分析,揭示了上述层次上树皮的显著能量耗散能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/60d4/7247593/878625481b0c/ijms-21-03355-g0A1.jpg

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