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Role of strain rate in phase stability and deformation mechanism of non-equiatomic Fe38-xMn30Co15Cr15Ni2Gdx high-entropy alloy
Excellent combination of strength and ductility makes metastable high entropy alloys (HEAs) stand out from multi-principal elements alloys. In this study, micro-alloying Gd element is effectively solid solutionized in metastable single FCC phase FeMnCoCrNi HEA system, to bring the FCC phase stabilit...
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Published in: | Materials characterization 2022-12, Vol.194, p.112356, Article 112356 |
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Main Authors: | , , , , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Excellent combination of strength and ductility makes metastable high entropy alloys (HEAs) stand out from multi-principal elements alloys. In this study, micro-alloying Gd element is effectively solid solutionized in metastable single FCC phase FeMnCoCrNi HEA system, to bring the FCC phase stability decreased that causes a pronounced FCC → HCP phase transformation during compression. In order to decouple the temperature effect from the influence of dynamic strain rate on phase transformation, a wide strain rate range is adopted from 10−3–10−1 s−1 to 1000–5000 s−1. The results show that the increased strain rate and adiabatic temperature rise both can restrain the phase transformation. Under low strain rates (10−3–10−1 s−1), phase transformation is activated in all tested samples and gradually suppressed with the increase of strain rates, because the rate-induced shear bands inhibit the growth of the HCP phase. The reduction of strain hardening during phase transformation is related to the increase of local thermal activation volume due to disentangling of dislocations. Under dynamic strain rates (1000–5000 s−1), the phase transformation is completely substituted by deformation twinning due to the significant adiabatic temperature rise. The present work provides insights into the influence of strain rate on phase stability and deformation mechanism in a wide strain rate range.
•Gd decreases the FCC phase stability bringing pronounced FCC → HCP phase transformation in quasi-state compression.•Dislocation dissociation enlarges the thermally activated volume decreasing strain hardening rate.•Under low strain rates, rate-induced shear bands cause suppression of phase transformation.•Under high strain rates, adiabatic temperature rise, a thermo-related effect, causes suppression of phase transformation. |
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ISSN: | 1044-5803 1873-4189 |
DOI: | 10.1016/j.matchar.2022.112356 |