材料科学
钇
合金
冶金
高熵合金
耐火材料(行星科学)
退火(玻璃)
微观结构
难熔金属
晶间腐蚀
氧化物
作者
Yueling Guo,Junyang He,Zhiming Li,Xiaoxiang Wu,Wenjun Lu,Changmeng Liu
标识
DOI:10.1016/j.matchar.2022.112495
摘要
Here we employ the rare-earth element alloying strategy for microstructure and mechanical property tuning of a TaMo0.5NbZrTi1.5Al0.1 refractory high entropy alloy (RHEA). The alloying of 0.4 at.% Y intensifies solidification segregation, with the enrichments of Zr and Al in the interdendritic region. The severer solidification segregation in the Y-alloyed RHEA drives the microstructural evolution upon annealing for the Y-alloyed RHEA, including the significant grain refinement, the removal of residual oxygen and the reduced nano-sized precipitates. However, the Y2O3 oxides and shrinkage defects are also generated in Y-alloyed RHEA. Compressive mechanical testing verifies the slight beneficial effect of the alloying of trace Y on the compressive strength (up to ∼1669 MPa) and fracture strain (up to ∼20.6%) of RHEA with an intergranular fracture mode. This work provides a primary exploration on RHEAs modified by rare-earth elements, and can be used as a reference for future alloy design.
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