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Microstructure evolution in deformed copper

delete2007-08-20
delete15
PRE
AI
P
P. Landau *
R
Roni Z. Shneck
G
Guy Makov
A
A. Venkert
DOI:10.1007/s10853-007-1999-6delete
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Abstract

Abstract

En 中文
The effects of strain and temperature on the microstructure and the detailed structure of dislocation walls in compressed pure polycrystalline copper were systematically studied. The microstructure observed consisted of dislocation cells and second generation microbands (MB2) and is presented in a microtructural map. The detailed structure of the cell's boundaries evolves with increasing strain and/or temperature from tangled dislocations into arrays of parallel dislocations. Interplay between strain and temperature controls the microstructure and the detailed structure of the dislocation boundaries. Above 0.5 T-m only MB2 are observed; a different type of MB2 is also observed, one order of magnitude wider than the one observed at the lower temperature. With increasing strain and temperature the MB2 density increases. It seems that dislocation cells and MB2 are competitive dislocation patterns and at elevated temperatures the MB2 is the preferred dislocation pattern.
Keywords:
SINGLE-CRYSTALS
DEFORMATION MICROSTRUCTURES
HIGH-TEMPERATURES
HARDENING STAGES
ROLLED COPPER
SHEAR BANDS
FCC METALS
INTERMEDIATE
ALUMINUM
SLIP

Journal

Journal of Materials Science cover
Journal of Materials Science
IF:
3.9
Papers:
3.2W
Citations:
7.2W

Organization

No organization information available
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