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A computationally-efficient micromechanical model for the fatigue life of unidirectional composites under tension-tension loading
- Source :
- International Journal of Fatigue
-
Abstract
- Failure of fibre-reinforced composites is affected by fatigue, which increases the challenge in designing safe and reliable composite structures. This paper presents an analytical model to predict the fatigue life of unidirectional composites under longitudinal tension-tension. The matrix and fibre-matrix interface are represented through a cohesive constitutive law, and a Paris law is used to model fatigue due to interfacial cracks propagating from fibre-breaks. The strength of single-fibres is modelled by a Weibull distribution, which is scaled hierarchically though a stochastic failure analysis of composite fibre-bundles, computing stochastic S-N curves of lab-scaled specimens in less than one minute. Model predictions are successfully validated against experiments from the literature. This model can be used to reduce the need for fatigue testing, and also to evaluate the impact of constituent properties on the fatigue life of composites.
- Subjects :
- Technology
CRACK-GROWTH
Materials science
FIBER-REINFORCED EPOXY
Materials Science
Composite number
Constitutive equation
Materials Science, Multidisciplinary
02 engineering and technology
0905 Civil Engineering
Industrial and Manufacturing Engineering
FRACTURE-TOUGHNESS
Engineering
Fibre reinforced material
Fracture toughness
0203 mechanical engineering
COHESIVE ZONE
Micro-mechanics
FAILURE
Mechanical Engineering & Transports
General Materials Science
POLYMER COMPOSITES
Composite material
Fatigue
Weibull distribution
Science & Technology
Tension (physics)
Mechanical Engineering
Analytical modelling
Fatigue testing
Micromechanics
021001 nanoscience & nanotechnology
Cohesive interface modelling
Micromechanical model
Engineering, Mechanical
020303 mechanical engineering & transports
Mechanics of Materials
Modeling and Simulation
HYBRID COMPOSITES
HIERARCHICAL SCALING LAW
DELAMINATION GROWTH
CARBON/EPOXY COMPOSITE
0210 nano-technology
0913 Mechanical Engineering
Subjects
Details
- Language :
- English
- ISSN :
- 01421123
- Volume :
- 116
- Database :
- OpenAIRE
- Journal :
- International Journal of Fatigue
- Accession number :
- edsair.doi.dedup.....ac220e838c3b93d2c0937e3fea92b76e
- Full Text :
- https://doi.org/10.1016/j.ijfatigue.2018.05.017