Strengthening in multi-principal element alloys with local-chemical-order roughened dislocation pathways
Упрочнение многокомпонентных сплавов с дислокационными траекториями, осложнёнными локальным химическим порядком
2019-08-08
SCID: 54.1/f7tpn6qn
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dislocation pathwaysgeneralized planar fault energieslocal chemical orderingmulti-principal element alloysnanoscale segment detrapping
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Abstract (AI)
High-entropy and medium-entropy alloys are presumed to have a configurational entropy as high as that of an ideally mixed solid solution (SS) of multiple elements in near-equal proportions. However, enthalpic interactions inevitably render such chemically disordered SSs rare and metastable, except at very high temperatures. Here we highlight the wide variety of local chemical ordering (LCO) that sets these concentrated SSs apart from traditional solvent-solute ones. Using atomistic simulations, we reveal that the LCO of the multi-principal-element NiCoCr SS changes with alloy processing conditions, producing a wide range of generalized planar fault energies. We show that the LCO heightens the ruggedness of the energy landscape and raises activation barriers governing dislocation activities. This influences the selection of dislocation pathways in slip, faulting, and twinning, and increases the lattice friction to dislocation motion via a nanoscale segment detrapping mechanism. In contrast, severe plastic deformation reduces the LCO towards random SS.
Key Findings
1
Chemically disordered concentrated solid solutions are generally metastable because enthalpic interactions oppose ideal configurational mixing, except at very high temperatures.
2
LCO roughens the dislocation energy landscape and increases activation barriers controlling slip, faulting, and twinning pathways.
3
LCO strengthens the alloy by increasing lattice friction through nanoscale dislocation-segment detrapping.
4
Local chemical order (LCO) in multi-principal-element NiCoCr solid solutions varies with processing conditions and generates a broad range of generalized planar fault energies.
5
Severe plastic deformation reduces local chemical order toward a more random solid-solution state.
Research Object
multi-principal-element NiCoCr solid solution with processing-dependent local chemical ordering
Research Subject
the effects of local chemical ordering on generalized planar fault energies, dislocation pathways, activation barriers, and lattice friction during slip, faulting, and twinning
Publication Details
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2019-08-08
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