Abstract
The dynamic solidification mechanism of binary Ni77.6Si22.4 hypereutectic alloy within ultrasonic field under different ultrasound amplitudes was studied by three-dimensional ultrasonic solidification method. The results show that, under static condition, the solidified microstructure is featured coarse primary β(Ni3Si) dendrites and regular lamellar α(Ni)+β(Ni3Si) eutectic in interdendritic regions. As the ultrasonic amplitude increasing, the primary β(Ni3Si) phase dendrites transform into fine equiaxed grains, with the grain size decreasing from 1950 μm to 35 μm. The α(Ni) + β(Ni3Si) eutectic structures undergo the morphological evolution process of “lamellar eutectic→irregular eutectic→divorced eutectic”. The transient cavitation generates the local high undercooling in the alloy melt, which increases the nucleation rate of primary phase, serving as the dominant factor in grain refinement. During subsequent eutectic transformation, the transient cavitation effect increases the difference in nucleation rates between the eutectic β(Ni3Si) and α(Ni) phases, finally resulting in a divorced eutectic structure. The ultrasonically solidified microstructures exhibit a maximum compressive strength of 2.65 GPa and a strain rate of 20.4%, which are 1.4 and 1.7 times higher than those under the static condition, respectively. Furthermore, the self-corrosion current density of solidified alloy decreases from 2.0×10-6 A/cm2 under the static solidification to 7.8×10-7 A/cm2 under the ultrasonic condition.
| Translated title of the contribution | Solidification microstructure evolution and application performance improvement of Ni77.6Si22.4 alloy by ultrasound field |
|---|---|
| Original language | Chinese (Traditional) |
| Pages (from-to) | 2151-2163 |
| Number of pages | 13 |
| Journal | Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals |
| Volume | 36 |
| Issue number | 6 |
| DOIs | |
| State | Published - Jun 2026 |
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