Abstract
In this study, a novel Ni-W-Co-Mo medium heavy alloy (MHA) was designed to improve its mechanical strength via Mo doping. In the Ni-42W-10Co-xMo alloy series, where x represents the weight percent of Mo and varies between 0, 1, 2, 5, and 10, the microstructure transitions from a dendritic structure to a hypoeutectic structure as the Mo content increases from 0 to 5wt.%. Moreover, as the Mo content increases from 0 to 10wt.%, the distribution of the μ-phase shifts from being individually dispersed to forming aggregates, and its volume fraction rises from 0.5% to 7.9%. Notably, the μ-phase evolves into an eutectic microstructure, which helps in minimizing the segregation of elements. This change is accompanied by a substantial enhancement in mechanical properties; specifically, the compressive yield strength at room temperature increases from 350 MPa to 646 MPa, indicating a significant 85% increase. Similarly, the microhardness increases from 230 HV to 304 HV. Molecular dynamics simulations further reveal that the strengthening mechanism of Ni-42W-10Co-xMo alloys is Mo-induced solid solution strengthening and precipitation strengthening.
Original language | English |
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Pages (from-to) | 108-116 |
Number of pages | 9 |
Journal | China Foundry |
Volume | 22 |
Issue number | 1 |
DOIs | |
Publication status | Published - Jan 2025 |
Externally published | Yes |
Keywords
- A
- mechanical properties
- medium-heavy alloys
- Ni-based alloy
- precipitation strengthening
- solid solution strengthening
- TG146.416