Investigation on the Static and Fatigue Failure of Bi-Directional Composite Pipes

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The process of filament winding is particularly suited to the manufacturing of composite pipes. This paper first describes the overall process and its advantages for composite structures. Particular attention is devoted to bi-directional pipes [+j, -j]n. The static behaviour exhibits damage and plastic phenomena depending on the loading and stacking sequence. In the main part of the paper we focus our presentation on [+55, -55]n. The failure mode under tensile-internal pressure loads of bi-directional pipes is described, as well as their fatigue behaviour with the effect of several parameters (such as frequency) on the lifetime and the kinetics of damage. In particular, this paper shows that the effect of frequency is related to two phenomena: temperature and fatigue-creep coupling, which have opposing action on the lifetime.

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435-442

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September 2005

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© 2005 Trans Tech Publications Ltd. All Rights Reserved

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[1] Rosenow M.W., Wind angle effects in glass fibre-reinforce polyester filament wound pipes, Composites, 2 (1984), p.144.

DOI: 10.1016/0010-4361(84)90727-4

Google Scholar

[2] Rousseau J., Perreux D., Verdière N., The influence of winding patterns on damage behaviour of filament-wound pipes. Composites Sciences and Technology, 9 (1999), p.1439.

DOI: 10.1016/s0266-3538(98)00184-5

Google Scholar

[3] Hinton MJ, Soden P.D., redicting failure in composite laminates: the background to the exercise, Composites Science and Technology 58 (1998) p.1001.

DOI: 10.1016/s0266-3538(98)00074-8

Google Scholar

[4] Boubakar M. L, Vang L., Trivaudey F, Perreux D., A meso-macro finite element modelling of laminate structures - Part II: time-dependent behaviour, Composite Structures, (2003) 60, 3, p.275.

DOI: 10.1016/s0263-8223(03)00012-6

Google Scholar

[5] Frost S.R., Predicting the long-term fatigue behaviour of filament wound glass fibre-epoxy matrix pipes. Proceeding of ICCM 10, Whistler, (1995), p.649.

Google Scholar

[6] Frost S.R., The fatigue performance of glass fibre/epoxy matrix filament wound pipes. In proceeding of ICCM 9, Madrid, 1993, 5, 684-692.

Google Scholar

[7] Joseph E., Perreux D., Fatigue behaviour of glass-fibre/epoxy-matrix filament-wound pipes. Composites Science and Technology, 52 (1994), p.469.

DOI: 10.1016/0266-3538(94)90029-9

Google Scholar

[8] Kyanak C., Mat O., Uniaxial fatigue behaviour of filament-wound glass-fibre/epoxy composite pipes, Composites Science and Technology, 61 (2001), p.1833.

DOI: 10.1016/s0266-3538(01)00084-7

Google Scholar

[9] Ellyin F., Martens M., Biaxial fatigue behaviour of multidirectional filament-wound fibreglass /epoxy pipe, Composites Science and Technology, 61 (2001), p.491.

DOI: 10.1016/s0266-3538(00)00215-3

Google Scholar

[10] Laurin F , Carrere N, Leroy F-H, Maire J-F, Perreux D, A multiscale progressive failure criterion for composite materials , Proceeding of ECCM, Rhodes, 2004 . Nf Frequency Frequency of transition Main phenomenon : Creep-Fatigue coupling : Main phenomenon : Temperature effect.

Google Scholar