Journal article
A micro-mechanics based extension of the GTN continuum model accounting for random void distributions
- Abstract:
- Randomness in the void distribution within a ductile metal complicates quantitative modeling of damage following the void growth to coalescence failure process. Though the sequence of micro-mechanisms leading to ductile failure is known from unit cell models, often based on assumptions of a regular distribution of voids, the effect of randomness remains a challenge. In the present work, mesoscale unit cell models, each containing an ensemble of four voids of equal size that are randomly distributed, are used to find statistical effects on the yield surface of the homogenized material. A yield locus is found based on a mean yield surface and a standard deviation of yield points obtained from 15 realizations of the four-void unit cells. It is found that the classical GTN model very closely agrees with the mean of the yield points extracted from the unit cell calculations with random void distributions, while the standard deviation S varies with the imposed stress state. It is shown that the standard deviation is nearly zero for stress triaxialities T ≤ 1/3, while it rapidly increases for triaxialities above T ≈ 1, reaching maximum values of about S/𝜎o ≈ 0.1 at T ≈ 4. At even higher triaxialities it decreases slightly. The results indicate that the dependence of the standard deviation on the stress state follows from variations in the deformation mechanism since a well-correlated variation is found for the volume fraction of the unit cell that deforms plastically at yield. Thus, the random void distribution activates different complex localization mechanisms at high stress triaxialities that differ from the ligament thinning mechanism forming the basis for the classical GTN model. A method for introducing the effect of randomness into the GTN continuum model is presented, and an excellent comparison to the unit cell yield locus is achieved.
- Publication status:
- Published
- Peer review status:
- Peer reviewed
Actions
Access Document
- Files:
-
-
(Preview, Version of record, pdf, 2.1MB, Terms of use)
-
- Publisher copy:
- 10.1016/j.euromechsol.2023.105123
Authors
- Publisher:
- Elsevier
- Journal:
- European Journal of Mechanics - A/Solids More from this journal
- Volume:
- 104
- Article number:
- 105123
- Publication date:
- 2023-09-03
- Acceptance date:
- 2023-08-28
- DOI:
- ISSN:
-
0997-7538
- Language:
-
English
- Keywords:
- Pubs id:
-
1608443
- Local pid:
-
pubs:1608443
- Deposit date:
-
2024-02-27
Terms of use
- Copyright holder:
- Holte et al.
- Copyright date:
- 2023
- Rights statement:
- © 2023 The Author(s). Published by Elsevier Masson SAS. This is an open access article under the CC BY license.
- Licence:
- CC Attribution (CC BY)
If you are the owner of this record, you can report an update to it here: Report update to this record