Abstract
This paper presents a model which quantitatively predicts grain refinement and strength/hardness of Al alloys after very high levels of cold deformation through processes including cold rolling, equal channel angular pressing (ECAP), multiple forging (MF), accumulative rolling bonding (ARB) and embossing. The model deals with materials in which plastic deformation is exclusively due to dislocation movement, which is in good approximation the case for aluminium alloys. In the early stages of deformation, the generated dislocations are stored in grains and contribute to overall strength. With increase in strain, excess dislocations form and/or move to new cell walls/grain boundaries and grains are refined. We examine this model using both our own data as well as the data in the literature. It is shown that grain size and strength/hardness are predicted to a good accuracy.
| Original language | English |
|---|---|
| Title of host publication | Encyclopedia of Aluminum and Its Alloys, Two-Volume Set (Print) |
| Publisher | CRC Press |
| Pages | 1054-1068 |
| Number of pages | 15 |
| Volume | 1-2 |
| ISBN (Electronic) | 9781351045629 |
| ISBN (Print) | 9781351045605 |
| DOIs | |
| State | Published - 1 Jan 2018 |
| Externally published | Yes |
Keywords
- Al Alloys
- Al alloys
- Arb
- Cold Deformation
- Dislocation Density
- Dislocation Density Measurements
- Dislocation Generation
- Dislocation Strengthening
- EBSD Measurement
- ECAP
- ECAP Process
- GB
- Grain refinement
- HAGBs
- Hall Petch Equation
- Intercept Length
- LAGBs
- Misorientation Angle
- Modelling
- Non-shearable Particles
- Poisson Voronoi Tessellation
- SPD
- Severe plastic deformation
- Solid Solution Strengthening
- Strengthening
- Strengthening Contribution
- Subgrain Boundaries
- TEM Determination
- UFG
- Yield Strength
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