Using the analysis method of the Dugdale-Barenblatt model and considering the rapid stress drop and strain softening of material, the fracture process zone at the near tip of a mode-I crack in a brittle damaged material is studied. It is pointed out that under external loads a narrow strip zone of d
Stress, deformation and damage fields near the tip of a crack in a damaged nonlinear material
โ Scribed by Tie-Jun Wang; Zhen-Bang Kuang
- Publisher
- Springer Netherlands
- Year
- 1996
- Tongue
- English
- Weight
- 1013 KB
- Volume
- 79
- Category
- Article
- ISSN
- 1573-2673
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โฆ Synopsis
The stress, strain, displacement and damage fields near the tip of a crack in a power-law hardening material with continuous damage formation under antiplane longitudinal shear loading are investigated analytically. The interaction between a major crack and distributed microscopic damage is considered by describing the effect of damage in terms of a damage variable D. A deformation plasticity theory coupled with damage and a damage evolution law are formulated. A hodograph transformation is employed to determine the singularity and angular distribution of the crack-tip quantities. Consequently, analytical solutions for the antiplane shear crack-tip fields are obtained. Effects of the hardening exponent n and the damage exponent m on the crack-tip fields are discussed. It is found that the present crack-tip stress and strain solutions for damaged nonlinear material are similar to the well-known HRR fields for virgin materials. However, damage leads to a weaker singularity of stress, and to a stronger singularity of strainvompared to that for virgin materials, respectively. The stress associated with damage always falls below the HRR field for virgin material; but the distribution of strain associated with damage lies slightly above the HRR field for r/(J/~'o) > 1.5 while the difference becomes negligible when r/(J/~) > 2. The limiting distributions of stress and strain may indeed be given by the HRR field.
๐ SIMILAR VOLUMES
Plane strain deformations near the tip of a crack between two homogeneous and isotropic linear elastic bodies are studied on the assumptions that the two surfaces on either side of the crack contact each other and that the dilatation everywhere in the body is greater than or equal to a constant. The
The crack tip strain and stress fields in a viscoelastic material under nonproportional loading conditions are evaluated. In order to evaluate the strain field, the crack tip displacement field is measured by using the digital image correlation (DIC) technique. This displacement field is then approx