Microstructural characteristics of adiabatic shear localization in a metastable beta titanium alloy deformed at high strain rate and elevated temperatures

Hongyi Zhan, Weidong Zeng, Gui Wang, Damon Kent, Matthew Dargusch

Research output: Contribution to journalArticlepeer-review

48 Scopus citations

Abstract

The microstructural evolution and grain refinement within adiabatic shear bands in the Ti6554 alloy deformed at high strain rates and elevated temperatures have been characterized using transmission electron microscopy. No stress drops were observed in the corresponding stress-strain curve, indicating that the initiation of adiabatic shear bands does not lead to the loss of load capacity for the Ti6554 alloy. The outer region of the shear bands mainly consists of cell structures bounded by dislocation clusters. Equiaxed subgrains in the core area of the shear band can be evolved from the subdivision of cell structures or reconstruction and transverse segmentation of dislocation clusters. It is proposed that dislocation activity dominates the grain refinement process. The rotational recrystallization mechanism may operate as the kinetic requirements for it are fulfilled. The coexistence of different substructures across the shear bands implies that the microstructural evolution inside the shear bands is not homogeneous and different grain refinement mechanisms may operate simultaneously to refine the structure.

Original languageEnglish
Article number7820
Pages (from-to)103-113
Number of pages11
JournalMaterials Characterization
Volume102
DOIs
StatePublished - Apr 2015

Keywords

  • Adiabatic shear band
  • Beta titanium alloy
  • Grain refinement mechanism
  • TEM

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