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Enhancement of fatigue resistance by overload-induced deformation twinning in a CoCrFeMnNi high-entropy alloy
- Source :
- Acta Materialia. 201:412-424
- Publication Year :
- 2020
- Publisher :
- Elsevier BV, 2020.
-
Abstract
- We examined fatigue-crack-growth behaviors of CoCrFeMnNi high-entropy alloys (HEAs) under as-fatigued and tensile-overloaded conditions using neutron-diffraction measurements coupled with diffraction peak-profile analyses. We applied both high-resolution transmission electron microscopy (HRTEM) and neutron-diffraction strain mapping for the complementary microstructure examinations. Immediately after a single tensile overload, the crack-growth-retardation period was obtained by enhancing the fatigue resistance, as compared to the as-fatigued condition. The combined mechanisms of the overload-induced larger plastic deformation, the enlarged compressive residual stresses and plastic-zone size, the crack-tip blunting ahead of the crack tip, and deformation twinning governed the pronounced macroscopic crack-growth-retardation behavior following the tensile overload. A remarkable fracture surface of highly-periodic serrated features along the crack-propagation direction was found in the crack-growth region immediately after the tensile overload. Moreover, a transition of plastic deformation from planar dislocation slip-dominated to twinning-dominated microstructures in the extended plastic zone was clearly observed at room temperature in the overloaded condition, in accordance with the simulated results by a finite element method (FEM). The above tensile overload-induced simultaneously combined effects in the coarse-grained CoCrFeMnNi shed light on the improvement of fatigue resistance for HEAs applications.
- Subjects :
- 010302 applied physics
Materials science
Polymers and Plastics
Metals and Alloys
02 engineering and technology
Paris' law
021001 nanoscience & nanotechnology
Microstructure
01 natural sciences
Electronic, Optical and Magnetic Materials
Fracture toughness
Residual stress
0103 physical sciences
Ultimate tensile strength
Ceramics and Composites
Deformation (engineering)
Dislocation
Composite material
0210 nano-technology
Crystal twinning
Subjects
Details
- ISSN :
- 13596454
- Volume :
- 201
- Database :
- OpenAIRE
- Journal :
- Acta Materialia
- Accession number :
- edsair.doi...........79369d8a5c6f0eb4d14652a90f70c7c7
- Full Text :
- https://doi.org/10.1016/j.actamat.2020.10.016