4.7 Article

Crystal defect associated selection of phase transformation orientation relationships (ORs)

Journal

ACTA MATERIALIA
Volume 152, Issue -, Pages 315-326

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2018.04.031

Keywords

Phase transformation; Orientation relationship (OR); Transformation strain; Deformation gradient tensor; Dislocation

Funding

  1. 111 Project of China [B07015]
  2. National Nature Science Foundation of China [51471047]
  3. Fundamental Research Funds for the Central Universities [N130418001]
  4. China Scholarship Council

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Phase transformation in solids always follows specific orientation relationships (ORs). The OR usually ensures a minimum lattice deformation for the structure change. However, in many cases different ORs are respected by the same transformation. The selection role and the link between the OR and the existing crystal defects needs further investigation. Thus, in this work, the alpha to beta heating phase transformation induced by high density Electric Current Pulse (ECP) treatments in an annealed Cu-40%Zn alloy was investigated. Results show that the phase obeys the K-S OR when formed along the a grain boundaries or in their vicinities, or the N-W OR when formed in the a grain interiors. In the former sites, the {111}(alpha)/<1<(1)over bar>0>(alpha), dislocation arrays were frequently observed, whereas in the latter, the {111}(alpha)/<11<(2)over bar>>(alpha) stacking faults were often found. Transformation strain analyses revealed that under the K-S OR the maximum lattice deformation required is a shear on the {111}(alpha) plane in the <1<(1)over bar>0>(alpha), direction, whereas under the N-W OR the maximum deformation is a shear on the {1 1 1}(alpha) plane in the <11<(2)over bar>>(alpha) direction. Thus the existing {111}(alpha)/<1<(1)over bar>0>(alpha) dislocation arrays along the a grain boundaries and in their vicinities provide pre-strain required by the transformation via the K -S path, whereas the {111}(alpha)/<11<(2)over bar>>(alpha) , stacking faults boarded by{111}(alpha)/<11<(2)over bar>>(alpha) , partial dislocations offer pre-strain facilitating the transformation via the N-W path. The present results provide new information on the role of crystal defects on phase transformation strain path and the selection of transformation ORs. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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