Influence of boundary conditions on bi-phased polycrystal microstructure calculation
β Scribed by P. Evrard; A. El Bartali; V. Aubin; C. Rey; S. Degallaix; D. Kondo
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 783 KB
- Volume
- 47
- Category
- Article
- ISSN
- 0020-7683
No coin nor oath required. For personal study only.
β¦ Synopsis
In this paper, polycrystalline bi-phased microstructure calculations were performed using finite element (FE) method and compared to mechanical fields measured experimentally using a digital image correlation (DIC) technique. From scanning electron microscopic (SEM) observations and electron back-scattered diffraction (EBSD) crystal orientation measurements performed on an austenitic-ferritic stainless steel test specimen, a quasi-2D numerical polycrystalline microstructure was constructed. Mechanical behaviors of austenitic (FCC) and ferritic (BCC) grains were modeled by two crystal plasticity laws, based on crystallographic slips and dislocation densities. FE mechanical fields were calculated using two types of boundary conditions: the displacements measured by DIC, and the average of the displacements measured by DIC. A better description of intraphase and intragranular strain heterogeneities is obtained using as boundary conditions the displacements measured instead of the average of the displacements measured.
π SIMILAR VOLUMES
It has been shown in a preceding paper that a reasonable two-phase model for the catalytic fixed-bed reactor in the region of multiple steady states should take into account beat conduction in the catalyst phase. In this paper the study of the proposed model will be continued using the example of th