Dislocation density in fine grain-size spark-plasma sintered aluminum measured using high brightness synchrotron radiation

•GND density calculated based on 3D synchrotron data with 0.01° angular resolution.•As-sintered fine grain-size samples are in a predominantly recrystallized condition.•Estimation of GND strength contribution supports dislocation-source hardening model. Three-dimensional orientation mapping of sampl...

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Veröffentlicht in:Materials letters 2020-06, Vol.269, p.127653, Article 127653
Hauptverfasser: Zhang, C.L., Godfrey, A., Zhang, Y, Wu, G.L., Xu, R., Liu, W., Juul Jensen, D.
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Sprache:eng
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Zusammenfassung:•GND density calculated based on 3D synchrotron data with 0.01° angular resolution.•As-sintered fine grain-size samples are in a predominantly recrystallized condition.•Estimation of GND strength contribution supports dislocation-source hardening model. Three-dimensional orientation mapping of samples of aluminum prepared by spark plasma sintering (SPS) with average grain sizes of 5 μm and 1 μm has been carried out using high-brightness synchrotron radiation, from which the geometrically necessary dislocation (GND) density has been determined. The low average measured GND density values confirm that the SPS process can be used to produce samples containing grains with dislocation density similar to that of fully recrystallized coarse-grained samples. Values of GND density are also compared to those obtained from electron back-scatter diffraction studies on the same material, highlighting the significantly higher angular resolution of the synchrotron data. For the 5 μm grain-size sample the measured GND density can account for a large fraction of the previously observed positive Hall-Petch deviation of this material. For the 1 μm grain-size sample, however, the GND-based strengthening contribution is much smaller than the reported positive Hall-Petch deviation, such that the additional strength may be reliably associated with dislocation source-limited strengthening.
ISSN:0167-577X
1873-4979
DOI:10.1016/j.matlet.2020.127653