2014
DOI: 10.1103/physrevlett.113.106104
|View full text |Cite
|
Sign up to set email alerts
|

Segregation Stabilizes Nanocrystalline Bulk Steel with Near Theoretical Strength

Abstract: Grain refinement through severe plastic deformation enables synthesis of ultrahigh-strength nanostructured materials. Two challenges exist in that context: First, deformation-driven grain refinement is limited by dynamic dislocation recovery and crystal coarsening due to capillary driving forces; second, grain boundary sliding and hence softening occur when the grain size approaches several nanometers. Here, both challenges have been overcome by severe drawing of a pearlitic steel wire (pearlite: lamellar stru… Show more

Help me understand this report

Search citation statements

Order By: Relevance

Paper Sections

Select...
4
1

Citation Types

5
178
0
3

Year Published

2016
2016
2024
2024

Publication Types

Select...
5

Relationship

2
3

Authors

Journals

citations
Cited by 238 publications
(186 citation statements)
references
References 26 publications
5
178
0
3
Order By: Relevance
“…The highest total wire drawing strain ( ε = 6.52) leads to a very high tensile strength of 7 GPa. [ 13 ] …”
Section: Methodsmentioning
confidence: 99%
See 4 more Smart Citations
“…The highest total wire drawing strain ( ε = 6.52) leads to a very high tensile strength of 7 GPa. [ 13 ] …”
Section: Methodsmentioning
confidence: 99%
“…[ 35 ] This results in a carbon-supersaturated Fe matrix and segregation of carbon atoms to grain boundaries stabilizing the nanosized Fe grain structure. [ 13,14,32,36 ] For the same samples, Li el al. reported a transition from a lamellar pearlite to a nanocrystalline microstructure during wire drawing at very high drawing strains.…”
Section: Doi: 101002/adma201601526mentioning
confidence: 99%
See 3 more Smart Citations