Fracture simulation of CFRP laminates in mixed mode bending
โ Scribed by P. Naghipour; J. Schneider; M. Bartsch; J. Hausmann; H. Voggenreiter
- Publisher
- Elsevier Science
- Year
- 2009
- Tongue
- English
- Weight
- 729 KB
- Volume
- 76
- Category
- Article
- ISSN
- 0013-7944
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โฆ Synopsis
This paper analyses the progressive mixed mode delamination failure in unidirectional and multidirectional composite laminates using fracture experiments, finite element (FE) simulations and an analytical solution. The numerical model of the laminate is described as an assembly of damageable layers and bilinear interface elements subjected to mixed mode bending. The analytical approach is used to estimate the total mixed mode and decomposed fracture energies for laminates with different stacking sequences, which is also validated through experiments. It is concluded that the interlaminar fracture toughness of multidirectional laminates is considerably higher than that of the unidirectional ones. The effect of initial interfacial stiffness and element size is studied and it is also shown that their value must not exceed a definite limit for the numerical simulations to converge. The model can also be further extended to simulate the mixed mode fracture in hybrid fiber metal laminates.
๐ SIMILAR VOLUMES
models are proposed to predict the mixed-mode fracture of notched composite laminates subjected to uniaxial and multiaxial loading. The basic elastic, strength properties and a characteristic length are utilized by these models. The characteristic length is determined differently for the two models.
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