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Nonlinear tensile behaviour of elementary hemp fibres: a numerical investigation of the relationships between 3D geometry and tensile behaviour

机译:基本麻纤维的非线性拉伸行为:三维几何和拉伸行为之间关系的数值研究

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摘要

Experimental observations have shown that most of plant fibres are characterised by an intricate structure, morphology and organisation. This complex geometrical characteristics may affect the mechanical behaviour of this kind of natural fibres and contribute to the high variability of their mechanical properties. So, this study proposes a numerical investigation on the relationship between the cross-sectional shape of primary hemp bast fibres and their tensile behaviour. A 3D viscoelastic model based on finite element method is used for this study. Real and elliptical simplified cross-sectional shapes are considered. Results of the tensile test simulations clearly show the strong influence of the degree of ellipticity on the tensile response of the fibre, and more exactly on the shape of the nonlinearity of the response. Results also show that this morphologic effect is strongly related and coupled to structural parameters and physical mechanisms, such as the cellulose microfibrils angle and the viscoelastic behaviour of the material of the fibre wall. Geometric issues could then contribute to explain the different types of tensile behaviour experimentally observed and deserve to be taken into account in plant fibre models.
机译:实验观察表明,大多数的植物纤维是由一个复杂的结构,形态和组织表征。这种复杂的几何特征可能会影响这种天然纤维的机械性能,并有助于其机械性能的高可变性。所以,本研究提出在初级麻韧皮纤维的横截面形状和它们的拉伸行为之间的关系的数值研究。用于该研究基于有限元方法的三维粘弹性模型。真实和椭圆简化的横截面形状被考虑。拉伸试验模拟的结果清楚地表明椭圆率在光纤上的张力响应的程度的强烈影响,并且更准确地对响应的非线性的形状。结果还表明,这种形态学效果密切相关,并耦接至结构参数和物理机制,如纤维素微纤丝角和纤维壁的材料的粘弹性行为。然后几何问题可能有助于解释不同类型的拉伸性能的实验观察,并值得考虑的植物纤维模型。

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  • 来源
    《Journal of Materials Science》 |2017年第11期|共20页
  • 作者单位

    Univ Bourgogne Franche Comte FEMTO ST Inst CNRS UFC ENSMM UTBM Dept Appl Mech Besancon France;

    Univ Bourgogne Franche Comte FEMTO ST Inst CNRS UFC ENSMM UTBM Dept Appl Mech Besancon France;

    Univ Bourgogne Franche Comte FEMTO ST Inst CNRS UFC ENSMM UTBM Dept Appl Mech Besancon France;

    Univ Bourgogne Franche Comte FEMTO ST Inst CNRS UFC ENSMM UTBM Dept Appl Mech Besancon France;

    Univ Bourgogne Franche Comte FEMTO ST Inst CNRS UFC ENSMM UTBM Dept Appl Mech Besancon France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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