Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1570653 | Materials Characterization | 2016 | 8 Pages |
Abstract
This study investigates the origin of {001}ã120ã-{113}ã361ã recrystallization textures in heavily rolled electrical steel. Initial cube and {001}ã120ã grains contribute to strong {001}ã120ã-{113}ã361ã recrystallization textures. Investigations on {001} columnar grains link recrystallization behavior to initial orientations, and the orientations of new {001}ã120ã-{113}ã361ã grains are related to crystal rotation routes during deformation. Initial cube grains lead to fine nuclei showing strong {001}ã120ã texture component, whereas {001}ã110ã grains cause uniformly deformed microstructure and negligible nucleation. For initial {001}ã120ã grains, the nucleation priority of both {001}ã120ã and {113}ã361ã grains are obtained in deformed {001}-{112}ã110ã areas, and these recrystallized grains are larger than those induced by initial cube grains. In addition to the {001}ã120ã-{113}ã361ã nucleation advantage owing to initial cube and {001}ã120ã grains, {113}ã361ã grains show size advantage and strengthen {113}ã361ã texture. Regarding Hi-B grain-oriented electrical steel samples, {001} grains in annealed hot bands illustrate deformation and recrystallization behaviors similar to those of columnar grains. Preferred {001}ã120ã-{113}ã361ã nucleation and coarse {001}ã120ã-{113}ã361ã recrystallized microstructure show the effect of initial {001}ã120ã grains to high extent, and these coarse recrystallized grains negatively affect the secondary recrystallization of Goss grains.
Related Topics
Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
Ning Zhang, Ping Yang, Weimin Mao,