Cryogenic strength improvement by utilizing room-temperature deformation twinning in a partially recrystallized VCrMnFeCoNi high-entropy alloy

Повышение прочности при криогенных температурах за счёт использования деформационного двойникования при комнатной температуре в частично рекристаллизованном высокоэнтропийном сплаве VCrMnFeCoNi
Yong Hee Jo, Sung Yong Jung, Wookjin Choi, Seok Su Sohn, Hyoung Seop Kim, Byeong‐Joo Lee, Nack J. Kim, Sanghan Lee
2017-06-12

CrMnFeCoNi high-entropy alloycold rollingcryogenic tensile propertiesdeformation twinningpartial recrystallization
The excellent cryogenic tensile properties of the CrMnFeCoNi alloy are generally caused by deformation twinning, which is difficult to achieve at room temperature because of insufficient stress for twinning. Here, we induced twinning at room temperature to improve the cryogenic tensile properties of the CrMnFeCoNi alloy. Considering grain size effects on the critical stress for twinning, twins were readily formed in the coarse microstructure by cold rolling without grain refinement by hot rolling. These twins were retained by partial recrystallization and played an important role in improving strength, allowing yield strengths approaching 1 GPa. The persistent elongation up to 46% as well as the tensile strength of 1.3 GPa are attributed to additional twinning in both recrystallized and non-recrystallization regions. Our results demonstrate that non-recrystallized grains, which are generally avoided in conventional alloys because of their deleterious effect on ductility, can be useful in achieving high-strength high-entropy alloys.
1
Cryogenic tensile performance reached 1.3 GPa tensile strength and up to 46% elongation, enabled by additional twinning in recrystallized and non-recrystallized regions.
2
Non-recrystallized grains, typically considered detrimental to ductility in conventional alloys, can contribute to simultaneously achieving high strength and ductility in high-entropy alloys.
3
Partial recrystallization retained the deformation twins, substantially strengthening the alloy at cryogenic temperatures with yield strengths approaching 1 GPa.
4
Room-temperature cold rolling induced deformation twins in coarse-grained CrMnFeCoNi high-entropy alloy without prior hot-rolling grain refinement.

Partially recrystallized CrMnFeCoNi high-entropy alloy with room-temperature deformation twins tested under cryogenic tensile conditions

The effects of retained and additional deformation twinning, grain size, and non-recrystallized regions on cryogenic tensile strength and ductility

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2017-06-12
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Yong Hee Jo
Sung Yong Jung
Wookjin Choi
Seok Su Sohn
Hyoung Seop Kim
Byeong‐Joo Lee
Nack J. Kim
Sanghan Lee
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