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Cited 40 time in webofscience Cited 45 time in scopus
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Formation of a high-cycle fatigue fracture surface and a crack growth mechanism of ultrafine-grained copper with different stages of microstructural evolution

Authors
Goto, M.Han, S. Z.Euh, K.Kang, J-HKim, S. S.Kawagoishi, N.
Issue Date
Nov-2010
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Keywords
Equal channel angular pressing; Fatigue crack; Fracture surface; Copper; Misorientation
Citation
ACTA MATERIALIA, v.58, no.19, pp 6294 - 6305
Pages
12
Indexed
SCI
SCIE
SCOPUS
Journal Title
ACTA MATERIALIA
Volume
58
Number
19
Start Page
6294
End Page
6305
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/24881
DOI
10.1016/j.actamat.2010.07.051
ISSN
1359-6454
1873-2453
Abstract
Fatigue tests were conducted on smooth specimens of ultrafine-grained copper produced by 4 and 12 passes of equal channel angular pressing (henceforth referred to as UFG4 and UFG12, respectively). A major crack was initiated from shear bands at an early stage of stressing. The UFG4 and UFG12 samples exhibited different growth behavior tendencies at a low crack growth rate (CGR). For UFG12, the CGR initially increased as the crack was extended with continued fatigue cycling, but then abruptly decreased before CGR reaching 10(-6) mm/c. This drop was temporary and was gradually recovered with subsequent cycling. The drop and recovery in CGR corresponded to the transitions from planar to granular fracture surface and from granular to striated fracture surface, respectively. For UFG4, there was no temporary CGR reduction, which corresponded to the change in the fracture surfaces from a planar to striated surface without any granulated surface formation. To understand the changes in growth rate and fracture surface morphologies, a quantitative model describing the crack growth mechanism is developed in this study by considering the reversible plastic zone size and the microstructural factors. The relationship between the crack growth behavior and the formation of the fracture surface is discussed based on the model. (C)2010 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
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대학원 (나노신소재융합공학과)
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