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Effect of Specimen Thickness and Stress Intensity Factor Range on Plasticity-Induced Fatigue Crack Closure in A7075-T6 Alloy
- Source :
- Materials, Volume 14, Issue 3, Materials, Vol 14, Iss 664, p 664 (2021)
- Publication Year :
- 2020
-
Abstract
- Fatigue crack growth experiments are performed using A7075-T6 compact tension (CT) specimens with various thicknesses t (1-21 mm). The stress intensity factor at the crack opening level Kop is measured, and the effects of t and the stress intensity factor range ΔK on Kop are investigated. In addition, the change in Kop value due to specimen surface removal is investigated. Furthermore, we clarify that the radius of curvature of the leading edge of the fatigue crack decreases as t becomes thinner. Using the three-dimensional elastoplastic finite element method, the amount of plastic lateral contraction (depression depth d) at the crack tip after fatigue loading is calculated quantitatively. The following main experimental results are obtained: In the region where ΔK is 5 MPam1/2 or higher, the rate of fatigue crack growth da/dN at a constant ΔK value increases as t increases from 1 to 11 mm. The da/dN between t = 11 and 21 mm is the same. Meanwhile, in the region where ΔK is less than 5 MPam1/2, the effect of t on da/dN is not observed. The effects of t and ΔK on the da/dN–△K relationship are considered physically and quantitatively based on d.
- Subjects :
- Leading edge
Materials science
Alloy
02 engineering and technology
fatigue crack growth behavior
engineering.material
Plasticity
lcsh:Technology
Article
Radius of curvature (optics)
specimen thickness
0203 mechanical engineering
plane stress and plane strain
General Materials Science
Composite material
lcsh:Microscopy
plastic lateral contraction at the fatigue crack tip
Stress intensity factor
lcsh:QC120-168.85
3D elastoplastic finite element method
lcsh:QH201-278.5
lcsh:T
Tension (physics)
Paris' law
021001 nanoscience & nanotechnology
Finite element method
020303 mechanical engineering & transports
lcsh:TA1-2040
engineering
plasticity-induced fatigue crack closure
lcsh:Descriptive and experimental mechanics
CT specimen
lcsh:Electrical engineering. Electronics. Nuclear engineering
aluminum alloy
lcsh:Engineering (General). Civil engineering (General)
0210 nano-technology
lcsh:TK1-9971
Subjects
Details
- ISSN :
- 19961944
- Volume :
- 14
- Issue :
- 3
- Database :
- OpenAIRE
- Journal :
- Materials (Basel, Switzerland)
- Accession number :
- edsair.doi.dedup.....48b0aba22652aef0aa30ea5a006c7dc2