Computation of mechanical anisotropy in thermally bonded bicomponent fibre nonwovens

Abstract Having a unique microstructure composed of randomly-oriented polymer-based fibres, nonwovens exhibit complex deformation characteristics. The most prominent one is the mechanical anisotropy leading to their direction-dependent deformation behaviour. This paper focuses on mechanical anisotropy of thermally bonded bicomponent fibre nonwovens with polymer-based bicomponent core/sheath fibres. A relation between mechanical anisotropy of these nonwovens and random orientation of their fibres is developed in this study. Random orientation of individual fibres is quantified in terms of the orientation distribution function (ODF) in order to determine the material’s anisotropy. The ODF is obtained by analysing the data acquired with scanning electron microscopy or X-ray micro-computed tomography using digital image processing techniques based on the Hough transform. A numerical tool is developed to perform this analysis and determine the anisotropic parameters in order to define direction-dependency of the structure’s mechanical properties. Finally, anisotropic parameters of various nonwovens computed with the introduced numerical approach are compared with those obtained from tensile tests applied in machine and cross directions of nonwovens.

[1]  Behnam Pourdeyhimi,et al.  Measuring Fiber Orientation in Nonwovens , 1996 .

[2]  Behnam Pourdeyhimi,et al.  Measuring Fiber Orientation in Nonwovens Part III: Fourier Transform , 1997 .

[3]  Behnam Pourdeyhimi,et al.  Measuring Fiber Orientation in Nonwovens: The Hough Transform , 2002 .

[4]  Behnam Pourdeyhimi,et al.  Review of Thermally Point-Bonded Nonwovens: Materials, Processes, and Properties , 2006 .

[5]  Stephen J. Russell,et al.  Handbook of Nonwovens , 2007 .

[6]  Han-Seong Kim Relationship between fiber orientation distribution function and mechanical anisotropy of thermally point-bonded nonwovens , 2004 .

[7]  Behnam Pourdeyhimi,et al.  Measuring Fiber Orientation in Nonwovens , 1996 .

[8]  E Ghassemieh,et al.  Microstructural analysis of non-woven fabrics using scanning electron microscopy and image processing. Part 1: Development and verification of the methods , 2002 .

[9]  Vadim V. Silberschmidt,et al.  Finite element modelling of thermally bonded bicomponent fibre nonwovens: Tensile behaviour , 2011 .

[10]  Han-Seong Kim Orthotropic theory for the prediction of mechanical performance in thermally point-bonded nonwovens , 2004 .

[11]  V. Silberschmidt,et al.  Finite element simulation of low-density thermally bonded nonwoven materials: Effects of orientation distribution function and arrangement of bond points , 2011 .

[12]  Bugao Xu,et al.  Determining Fiber Orientation Distribution in Nonwovens with Hough Transform Techniques , 1997 .

[13]  Vadim V. Silberschmidt,et al.  2D finite element analysis of thermally bonded nonwoven materials:continuous and discontinuous models , 2009 .