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青椰子果皮中的功能梯度激发了具有更高抗冲击强度、并保留了弯曲和拉伸性能的不对称纤维复合材料。

Functional gradients in the pericarp of the green coconut inspire asymmetric fibre-composites with improved impact strength, and preserved flexural and tensile properties.

作者信息

Graupner Nina, Labonte David, Humburg Heide, Buzkan Tayfun, Dörgens Anna, Kelterer Wiebke, Müssig Jörg

机构信息

HSB-City University of Applied Sciences Bremen, Biomimetics-The Biological Materials Group, Bremen, Germany.

出版信息

Bioinspir Biomim. 2017 Feb 28;12(2):026009. doi: 10.1088/1748-3190/aa5262.

DOI:10.1088/1748-3190/aa5262
PMID:28245197
Abstract

Here we investigate the mechanical properties and structural design of the pericarp of the green coconut (Cocos nucifera L.). The pericarp showed excellent impact characteristics, and mechanical tests of its individual components revealed gradients in stiffness, strength and elongation at break from the outer to the inner layer of the pericarp. In order to understand more about the potential effect of such gradients on 'bulk' material properties, we designed simple, graded, cellulose fibre-reinforced polylactide (PLA) composites by stacking layers reinforced with fibres of different mechanical properties. Tensile properties of the graded composites were largely determined by the 'weakest' fibre, irrespective of the fibre distribution. However, a graded design led to pronounced asymmetric bending and impact properties. Bio-inspired, asymmetrically graded composites showed a flexural strength and modulus comparable to that of the strongest reference samples, but the elongation at maximum load was dependent on the specimen orientation. The impact strength of the graded composites showed a similar orientation-dependence, and peak values exceeded the impact strength of a non-graded reference composite containing identical fibre fractions by up to a factor of three. In combination, our results show that an asymmetric, systematic variation of fibre properties can successfully combine desirable properties of different fibre types, suggesting new routes for the development of high-performance composites, and improving our understanding of the structure-function relationship of the coconut pericarp.

摘要

在此,我们研究了青椰子(椰属)果皮的力学性能和结构设计。该果皮表现出优异的抗冲击特性,对其各组成部分的力学测试表明,从果皮外层到内层,其刚度、强度和断裂伸长率存在梯度变化。为了更深入了解这种梯度对“整体”材料性能的潜在影响,我们通过堆叠由不同力学性能的纤维增强的层,设计了简单的、梯度的纤维素纤维增强聚乳酸(PLA)复合材料。梯度复合材料的拉伸性能在很大程度上由“最弱”的纤维决定,与纤维分布无关。然而,梯度设计导致明显的不对称弯曲和抗冲击性能。受生物启发的不对称梯度复合材料的弯曲强度和模量与最强参考样品相当,但最大载荷下的伸长率取决于样品的取向。梯度复合材料的抗冲击强度也表现出类似的取向依赖性,其峰值比含有相同纤维比例的非梯度参考复合材料的抗冲击强度高出两倍。综合来看,我们的结果表明,纤维性能的不对称、系统性变化能够成功地将不同纤维类型的理想性能结合起来,为高性能复合材料的开发提供了新途径,并增进了我们对椰子果皮结构 - 功能关系的理解。

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