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  4. Probabilistic strength prediction for double lap joints composed of pultruded GFRP profiles, part I: Experimental and numerical investigations
 
research article

Probabilistic strength prediction for double lap joints composed of pultruded GFRP profiles, part I: Experimental and numerical investigations

Vallée, T  
•
Correia, J R
•
Keller, T  
2006
Composites Science and Technology

Experimental and numerical investigations were carried out on adhesively bonded full-scale double lap joints composed of pultruded GFRP profiles with relatively thick adhesive layers. Thick adhesive layers are often used in infrastructure applications in order to compensate for geometrical tolerances. The influence of different geometric parameters on the joint strength was investigated: the thickness of the adhesive layer (5-35mm), the fillet radius (2-10mm) and the overlap length (100-300mm). It was found that the joint strength (i) decreases with the adhesive layer thickness, (ii) is almost independent of the fillet radius and (iii) increases with overlap length. Joints with a shorter overlap length failed in a brittle and sudden manner, while joints with a longer overlap showed stable crack growth during decreasing stiffness after crack initiation. It was concluded that the shape of through-thickness tensile and shear stress distributions influences joint strength and that joint strength is therefore influenced by a statistical size effect. [All rights reserved Elsevier]

  • Details
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Type
research article
DOI
10.1016/j.compscitech.2006.04.007
Web of Science ID

WOS:000240303800003

Author(s)
Vallée, T  
Correia, J R
Keller, T  
Date Issued

2006

Published in
Composites Science and Technology
Volume

66

Issue

13

Start page

1903

End page

1914

Subjects

adhesives

•

brittleness

•

cracks

•

elasticity

•

glass fibre reinforced plastics

•

pultrusion

•

shear strength

•

size effect

•

tensile strength

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CCLAB  
Available on Infoscience
June 22, 2007
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/9277
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