Strength variability of single flax fibres

被引:94
作者
Aslan, Mustafa [1 ]
Chinga-Carrasco, Gary [2 ]
Sorensen, Bent F. [1 ]
Madsen, Bo [1 ]
机构
[1] Tech Univ Denmark, Mat Res Div, Riso Natl Lab Sustainable Energy, DK-4000 Roskilde, Denmark
[2] Paper & Fibre Res Inst, N-7491 Trondheim, Norway
关键词
TENSILE PROPERTIES; WOOD; DEFORMATION; DIMENSIONS;
D O I
10.1007/s10853-011-5581-x
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Due to the typical large variability in the measured mechanical properties of flax fibres, they are often employed only in low grade composite applications. The present study aims to investigate the reasons for the variability in tensile properties of flax fibres. It is found that an inaccuracy in the determination of the cross-sectional area of the fibres is one major reason for the variability in properties. By applying a typical circular fibre area assumption, a considerable error is introduced into the calculated mechanical properties. Experimental data, together with a simple analytical model, are presented to show that the error is increased when the aspect ratio of the fibre cross-sectional shape is increased. A variability in properties due to the flax fibres themselves is found to originate from the distribution of defects along the fibres. Two distinctive types of stress-strain behaviours (linear and nonlinear) of the fibres are found to be correlated with the amount of defects. The linear stress-strain curves tend to show a higher tensile strength, a higher Young's modulus, and a lower strain to failure than the nonlinear curves. Finally, the fibres are found to fracture by a complex microscale failure mechanism. Large fracture zones are governed by both surface and internal defects; and these cause cracks to propagate in the transverse and longitudinal directions.
引用
收藏
页码:6344 / 6354
页数:11
相关论文
共 27 条
[1]   Strength distribution of elementary flax fibres [J].
Andersons, J ;
Sparnins, E ;
Joffe, R ;
Wallström, L .
COMPOSITES SCIENCE AND TECHNOLOGY, 2005, 65 (3-4) :693-702
[2]   Influence of kink bands on the tensile strength of flax fibers [J].
Baley, C .
JOURNAL OF MATERIALS SCIENCE, 2004, 39 (01) :331-334
[3]   Analysis of the flax fibres tensile behaviour and analysis of the tensile stiffness increase [J].
Baley, C .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2002, 33 (07) :939-948
[4]   Composites reinforced with cellulose based fibres [J].
Bledzki, AK ;
Gassan, J .
PROGRESS IN POLYMER SCIENCE, 1999, 24 (02) :221-274
[5]   Tensile and compressive properties of flax fibres for natural fibre reinforced composites [J].
Bos, HL ;
Van den Oever, MJA ;
Peters, OCJJ .
JOURNAL OF MATERIALS SCIENCE, 2002, 37 (08) :1683-1692
[6]   In situ ESEM study of the deformation of elementary flax fibres [J].
Bos, HL ;
Donald, AM .
JOURNAL OF MATERIALS SCIENCE, 1999, 34 (13) :3029-3034
[7]   Characteristics of Hermes flax fibres as a function of their location in the stem and properties of the derived unidirectional composites [J].
Charlet, K. ;
Baley, C. ;
Morvan, C. ;
Jernot, J. P. ;
Gomina, M. ;
Breard, J. .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2007, 38 (08) :1912-1921
[8]   Tensile deformation of a flax fiber [J].
Charlet, K. ;
Eve, S. ;
Jernot, J. P. ;
Gomina, M. ;
Breard, J. .
MESOMECHANICS 2009, 2009, 1 (01) :233-236
[9]   Computer-assisted scanning electron microscopy of wood pulp fibres: Dimensions and spatial distributions in a polypropylene composite [J].
Chinga-Carrasco, G. ;
Lenes, M. ;
Johnsen, P. O. ;
Hult, E. -L. .
MICRON, 2009, 40 (07) :761-768
[10]  
Cierpucha W, 2004, FIBRES TEXT EAST EUR, V12, P13