The cohesive zone model with a non-uniform traction-separation law for a system of several collinear cracks

Authors

  • M.F. Selivanov S. P. Timoshenko Institute of Mechanics of the NAS of Ukraine, Kiev
  • Yu.O. C hornoivan S. P. Timoshenko Institute of Mechanics of the NAS of Ukraine, Kiev

DOI:

https://doi.org/10.15407/dopovidi2018.09.035

Keywords:

cohesive zone model, collinear cracks, finite stress condition, fracture, shape parameters, traction—separation law

Abstract

The cohesive zone models are widely used for assessments of the critical loading level on structures. Here, an infinite plate with mode I collinear cracks is studied under a uniform tension applied at infinity. A proposed technique is applied to solve the problem basing on the cohesive crack model. The solution for the crack opening is found for a non-uniform traction-separation law with regard for the condition of smooth closure of the crack lips. Numerical results are presented for several values of the traction-separation law shape parameter. Some illustrations are given for the dependence of the crack opening on the external loading. It is found that its critical level is almost independent of the shape parameter.

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References

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Published

20.05.2024

How to Cite

Selivanov, M., & hornoivan, Y. C. (2024). The cohesive zone model with a non-uniform traction-separation law for a system of several collinear cracks . Reports of the National Academy of Sciences of Ukraine, (9), 35–41. https://doi.org/10.15407/dopovidi2018.09.035

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