Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital Microscope

Angiosperm leaf venation is based on two major patterns, typically dicotyledonous branching and monocotyledonous parallel veins. The influence of these patterns on deformation and fracture properties is poorly understood. In this paper, three species of dicotyledons with netted venation and three sp...

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Main Authors: Jingjing Liu, Wei Ye, Zhihui Zhang, Zhenglei Yu, Hongyan Ding, Chao Zhang, Sen Liu
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Applied Bionics and Biomechanics
Online Access:http://dx.doi.org/10.1155/2020/8792143
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spelling doaj-0aef6a569fad4444b7a0256f130bcec32021-07-02T10:04:00ZengHindawi LimitedApplied Bionics and Biomechanics1176-23221754-21032020-01-01202010.1155/2020/87921438792143Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital MicroscopeJingjing Liu0Wei Ye1Zhihui Zhang2Zhenglei Yu3Hongyan Ding4Chao Zhang5Sen Liu6Faculty of Mechanical & Material Engineering, Huaiyin Institute of Technology, Huai’an 223003, ChinaFaculty of Mechanical & Material Engineering, Huaiyin Institute of Technology, Huai’an 223003, ChinaThe Key Laboratory of Engineering Bionic (Ministry of Education, China) and the College of Biological and Agricultural Engineering, Jilin University, 5988 Renmin Street, Changchun 130025, ChinaThe Key Laboratory of Engineering Bionic (Ministry of Education, China) and the College of Biological and Agricultural Engineering, Jilin University, 5988 Renmin Street, Changchun 130025, ChinaFaculty of Mechanical & Material Engineering, Huaiyin Institute of Technology, Huai’an 223003, ChinaFaculty of Mechanical & Material Engineering, Huaiyin Institute of Technology, Huai’an 223003, ChinaFaculty of Mechanical & Material Engineering, Huaiyin Institute of Technology, Huai’an 223003, ChinaAngiosperm leaf venation is based on two major patterns, typically dicotyledonous branching and monocotyledonous parallel veins. The influence of these patterns on deformation and fracture properties is poorly understood. In this paper, three species of dicotyledons with netted venation and three species of monocots with parallel venation were selected, and the effect of vein distribution of leaves on their mechanical properties and deformation behavior was investigated. Whole images of leaves were captured using a digital camera, and their vein traits were measured using the image processing software Digimizer. A self-developed mechanical testing apparatus with high precision and low load was used to measure the tensile properties of leaves. The deformation behavior of the leaf was captured using a digital microscope during the tensile test. Results showed that the vein architecture of monocots and dicots is different, which had a remarkable effect on their mechanical properties, deformation behavior, and crack propagation behavior. The greater the diameter and the more the number of veins parallel to the tensile direction, the higher the tensile force, tensile strength, and elastic modulus of the leaves. The netted venation leaves evinced the elastic-plastic fracture type, and the hierarchy venation provided resistance to fracture propagation of cracks in the leaves by lengthening the crack path. The leaves with parallel venation behaved in a predominantly brittle manner or elastic fracture type, and the parallel venation inhibited the initiation of cracks in the leaves by increasing the load at complete fracture of the leaves. The investigation provides reference for a stiffened plate/shell structure and bionic anticrack design.http://dx.doi.org/10.1155/2020/8792143
collection DOAJ
language English
format Article
sources DOAJ
author Jingjing Liu
Wei Ye
Zhihui Zhang
Zhenglei Yu
Hongyan Ding
Chao Zhang
Sen Liu
spellingShingle Jingjing Liu
Wei Ye
Zhihui Zhang
Zhenglei Yu
Hongyan Ding
Chao Zhang
Sen Liu
Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital Microscope
Applied Bionics and Biomechanics
author_facet Jingjing Liu
Wei Ye
Zhihui Zhang
Zhenglei Yu
Hongyan Ding
Chao Zhang
Sen Liu
author_sort Jingjing Liu
title Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital Microscope
title_short Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital Microscope
title_full Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital Microscope
title_fullStr Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital Microscope
title_full_unstemmed Vein Distribution on the Deformation Behavior and Fracture Mechanisms of Typical Plant Leaves by Quasi In Situ Tensile Test under a Digital Microscope
title_sort vein distribution on the deformation behavior and fracture mechanisms of typical plant leaves by quasi in situ tensile test under a digital microscope
publisher Hindawi Limited
series Applied Bionics and Biomechanics
issn 1176-2322
1754-2103
publishDate 2020-01-01
description Angiosperm leaf venation is based on two major patterns, typically dicotyledonous branching and monocotyledonous parallel veins. The influence of these patterns on deformation and fracture properties is poorly understood. In this paper, three species of dicotyledons with netted venation and three species of monocots with parallel venation were selected, and the effect of vein distribution of leaves on their mechanical properties and deformation behavior was investigated. Whole images of leaves were captured using a digital camera, and their vein traits were measured using the image processing software Digimizer. A self-developed mechanical testing apparatus with high precision and low load was used to measure the tensile properties of leaves. The deformation behavior of the leaf was captured using a digital microscope during the tensile test. Results showed that the vein architecture of monocots and dicots is different, which had a remarkable effect on their mechanical properties, deformation behavior, and crack propagation behavior. The greater the diameter and the more the number of veins parallel to the tensile direction, the higher the tensile force, tensile strength, and elastic modulus of the leaves. The netted venation leaves evinced the elastic-plastic fracture type, and the hierarchy venation provided resistance to fracture propagation of cracks in the leaves by lengthening the crack path. The leaves with parallel venation behaved in a predominantly brittle manner or elastic fracture type, and the parallel venation inhibited the initiation of cracks in the leaves by increasing the load at complete fracture of the leaves. The investigation provides reference for a stiffened plate/shell structure and bionic anticrack design.
url http://dx.doi.org/10.1155/2020/8792143
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