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Fracture energy and bridging law data are determined.
In this context, the bridging law is an important material parameter.
The bridging law of the material is related to material composition and fibre architecture.
Finally, a new bridging law is proposed and verified based on this study.
Thus the so-called bridging law is not a material parameter.
The mode I bridging law obtained from the constitutive model is implemented into a meso-scale cohesive zone formulation.
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All materials demonstrate softening bridging laws and this is discussed based on observed mechanisms of failure.
The macromechanical behavior was analyzed in terms of crack growth resistance and bridging laws using an elastic displacement correction approach.
In this way, the different scales are crossed by using different bridging laws, which enable us to directly predict the viscoelastic properties of polymeric materials using a bottom-up approach.
In the present work, a methodology is presented for the assessment of bridging laws for continuous fibre-reinforced ceramic matrix composites based on material properties as well as micromechanics of fibre deformation and failure.
In this study which focuses on Strain Hardening Cementitious Composites (SHCC), a numerical approach is proposed to compute the bridging laws in various sections of a specimen with varying content of randomly distributed fibers.
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