Degradation of the mechanical properties of NbMoTaW refractory high-entropy alloy in tension
Acta Materialia 279: 120297-120297
Article 2024 English
Authors
PK
Punit Kumar
XG
Xueqian Gou
DC
David H. Cook
Abstract
1 min read
The mechanical properties of the bcc refractory high-entropy alloy (RHEA) NbMoTaW with columnar and equiaxed microstructures and a nanoscale metal oxide layer on the grain boundaries are investigated at ambient temperatures (RT) to 1200 °C. Under compression, the alloy shows a yield strength, σ
y, of ⁓1390 ± 20 MPa at RT and retains a high yield strength, σ
y, of ⁓301.5 MPa at 1200 °C. However, in tension, the fracture strengths, σ
f, of both columnar and equiaxed microstructures are far lower - below 70 MPa - and the material fails in the elastic regime without showing any measurable ductility at all temperatures. The fracture mechanisms in tension transition from transgranular cleavage at RT to a mixture of transgranular and intergranular fracture at 800 °C to a complete intergranular fracture at 1200 °C due to selective weakening of the metal oxide layer on the grain boundaries driven by a structural change. The transition in the fracture mechanism in the equiaxed microstructure promotes extrinsic toughening at higher temperatures, resulting in a ⁓6.4 times higher fracture toughness (K
Ic ⁓10.3 MPa√m) at 1200 °C compared to that at RT. NbMoTaW is a well-known RHEA, but the poor tensile strength and fracture toughness measured in this study highlight the critical importance of investigating the mechanical properties of these high-temperature RHEAs in tension.
Punit Kumar, Matthew Michalek, David H. Cook, Sheng Huang, Kwang Boon Lau, Pei Wang, Mingwei Zhang, Andrew M. Minor, Upadrasta Ramamurty, Robert O. Ritchie
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