| Literature DB >> 32831468 |
Minh-Son Pham1,2, Mark Iadicola2, Adam Creuziger2, Lin Hu1,3, Anthony D Rollett1.
Abstract
A thermally-activated constitutive model is developed based on dislocation interactions, crystallographic orientations and microstructural evolution to describe the elasto-plastic stress-strain behavior during multi-axial loading. The aim is to contribute to the quantification of complex strain path response in solid solution strengthened alloys. In detail, dislocation/dislocation interactions are incorporated in the model to quantify latent and kinematic hardening phenomena during loading path changes. Dislocation density-based constitutive relations are included to account for dislocation features such as dislocation forests, walls and channels. Moreover specifically, dislocation/solute atom interactions are also considered in order to account for both dynamic and static strain aging as well as static recovery. The model is validated against multiple multi-axial data sets for AA5754-O with changes of loading path and various degrees of pre-strain and time intervals between tests.Entities:
Keywords: Aging; Dislocation interaction; Recovery; Solid solution; Strain path dependence
Year: 2015 PMID: 32831468 PMCID: PMC7431946 DOI: 10.1016/j.ijplas.2014.09.010
Source DB: PubMed Journal: Int J Plast ISSN: 0749-6419 Impact factor: 7.081