Characterization of the mode I fracture energy of adhesive joints
โ Scribed by G. Steinbrecher; A. Buchman; A. Sidess; D. Sherman
- Publisher
- Elsevier Science
- Year
- 2006
- Tongue
- English
- Weight
- 243 KB
- Volume
- 26
- Category
- Article
- ISSN
- 0143-7496
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โฆ Synopsis
This investigation was aimed at improving the calculation of the Mode I fracture energy, G IC , of adhesive joints by incorporating the elasticity of the adhesive layer. It was also aimed at proposing ways to improve the calculation of G IC over the existing standard for the measurement of that material property.
Our experiments were performed with a variety of aluminum specimens bonded with a large number of different adhesives in various thicknesses. All specimens were tested under mode I loading. In calculating G IC , it is common to neglect the properties of the adhesive layer, especially when the compliance of the system is considered. The validity of this attitude was tested in the present study, and it was found to be in accord with the experimental results but only for joints bonded with a relatively thin layer of adhesive. A method for improving the calculation of the fracture energy of standard specimens, using a theoretical model for the compliance is proposed. This method comprises all the adhesive parameters and is appropriate for linear elastic joints.
๐ SIMILAR VOLUMES
A Cherepanov-Rice J integral is derived for Goland-Reissner type joints. It is shown that the resulting J integral is path independent under the assumption of small rotation of adherents and thin adhesive thickness. It represents the product of strain energy density at the edge of the joint and adhe
Abstraet--A Compact Mixed Mode (CMM) fracture specimen was developed for fracture toughness determination. It is capable of determining the complete range of fracture toughness under pure mode I, pure mode II and mixed mode I and II loading conditions. Finite element analysis was conducted to provid