TY - JOUR
T1 - Laser ultrashort-time liquid phase sintering of a dual-phase refractory multi-principal-element alloy
AU - Gao, Wenqi
AU - Wang, Benpeng
AU - Liang, Yao Jian
AU - Xue, Yunfei
N1 - Publisher Copyright:
© Published under licence by IOP Publishing Ltd.
PY - 2025
Y1 - 2025
N2 - While energetic high-entropy alloys (EHEAs) demonstrate tunable performance characteristics, the thermodynamic considerations inherent in their compositional design fundamentally impede the attainment of high-density properties. This study reports a novel dual-phase multi-principal element alloy (MPEA) comprising tungsten (W)-rich dense phase and EHEA-based solid solution phase, synthesized through laser-induced ultrashort-time liquid phase sintering (LULPS). The systematic investigation correlates processing parameters with densification behaviour and W-phase morphological evolution. The results show that with the higher laser energy densities (E), the density of the alloy increases, and the W morphologies change from spherical to dendritic or polygonal. Notably, dendritic/polygonal W dominance, elevated matrix W content, and intensified W-W connectivity contribute to property degradation. Therefore, when the E reaches 120J/mm3, high-density alloy with the target microstructure can be successfully fabricated. Under dynamic loading, this alloy demonstrated superior strength-ductility combination (compressive strength: ∼2.37 GPa, fracture strain: ∼33%) and energy release characteristics. This provides a new insight for the design and development of advanced materials.
AB - While energetic high-entropy alloys (EHEAs) demonstrate tunable performance characteristics, the thermodynamic considerations inherent in their compositional design fundamentally impede the attainment of high-density properties. This study reports a novel dual-phase multi-principal element alloy (MPEA) comprising tungsten (W)-rich dense phase and EHEA-based solid solution phase, synthesized through laser-induced ultrashort-time liquid phase sintering (LULPS). The systematic investigation correlates processing parameters with densification behaviour and W-phase morphological evolution. The results show that with the higher laser energy densities (E), the density of the alloy increases, and the W morphologies change from spherical to dendritic or polygonal. Notably, dendritic/polygonal W dominance, elevated matrix W content, and intensified W-W connectivity contribute to property degradation. Therefore, when the E reaches 120J/mm3, high-density alloy with the target microstructure can be successfully fabricated. Under dynamic loading, this alloy demonstrated superior strength-ductility combination (compressive strength: ∼2.37 GPa, fracture strain: ∼33%) and energy release characteristics. This provides a new insight for the design and development of advanced materials.
UR - http://www.scopus.com/pages/publications/105014732592
U2 - 10.1088/1742-6596/3080/1/012144
DO - 10.1088/1742-6596/3080/1/012144
M3 - Conference article
AN - SCOPUS:105014732592
SN - 1742-6588
VL - 3080
JO - Journal of Physics: Conference Series
JF - Journal of Physics: Conference Series
IS - 1
M1 - 012144
T2 - 11th International Conference on Applied Materials and Manufacturing Technology, ICAMMT 2025
Y2 - 11 April 2025 through 13 April 2025
ER -