Tracing the goss orientation during deformation and annealing of an FeSi single crystal

Dorothee Dorner, Yoshitaka Adachi, Kaneaki Tsuzaki, Stefan Zaefferer

Research output: Chapter in Book/Report/Conference proceedingConference contribution

9 Citations (Scopus)


A Goss-oriented single crystal was cold rolled up to 89% thickness reduction, and subsequently annealed at 550°C or 850°C During deformation most of the initially Goss-oriented material rotated into the two symmetrical {111}〈112〉 orientations. In addition, Goss regions were observed related to microbands or microshear bands. Goss regions in microshear bands formed during straining, whereas Goss regions between microbands were retained from the initial Goss orientation. The recrystallisation texture for annealing temperatures of both 550°C and 850°C is characterised by a Goss texture. However, the origin of the Goss recrystallisation nuclei appeared to be different for the different annealing conditions. In the material annealed at 550°C, the Goss texture originated from the Goss regions in the microshear bands. In contrast, for an annealing temperature of 850°C, the Goss grains between the microbands are likely to form recrystallisation nuclei.

Original languageEnglish
Title of host publicationFundamentals of Deformation and Annealing - Proceedings of the International Symposium held to coincide with the retirement of Professor John Humphreys
PublisherTrans Tech Publications Ltd
Number of pages6
ISBN (Print)0878494340, 9780878494347
Publication statusPublished - 2007
Externally publishedYes
EventInternational Symposium on Fundamentals of Deformation and Annealing - Manchester, United Kingdom
Duration: Sept 5 2006Sept 7 2006

Publication series

NameMaterials Science Forum
ISSN (Print)0255-5476
ISSN (Electronic)1662-9752


OtherInternational Symposium on Fundamentals of Deformation and Annealing
Country/TerritoryUnited Kingdom

All Science Journal Classification (ASJC) codes

  • General Materials Science
  • Condensed Matter Physics
  • Mechanics of Materials
  • Mechanical Engineering


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