TY - JOUR
T1 - Cooperative effects of Mo, V and Zr additions on the microstructure and properties of multi-elemental Nb-Si based alloys
AU - Ma, Rui
AU - Guo, Xiping
N1 - Publisher Copyright:
© 2022
PY - 2023/1/1
Y1 - 2023/1/1
N2 - Eight multi-elemental Nb-Si-based alloys with various Mo, V and Zr contents were prepared by vacuum non-consumable arc melting. The cooperative alloying effects of Mo, V and Zr on the arc-melted and heat-treated microstructure, mechanical properties as well as oxidation resistance at 1250 °C of the alloys were evaluated systematically. The results show that except for adding Mo solely, additions of Mo, V and Zr change the microstructure from eutectic to hypereutectic. The additions of Mo, V and Zr suppress the formation of α(Nb, X)5Si3 (“X” represents the alloying elements that substitute for Nb in the lattices), whilst promoting the formation of γ(Nb, X)5Si3. The heat treatment at 1450 °C for 50 h promotes the formation of (Nb, X)3Si phase in the Zr-containing alloys. Alloying with either Mo or Zr improves, and their composite additions more obviously improve the compressive yield strength at 1250 °C as well as the microhardness of γ(Nb, X)5Si3. The room temperature fracture toughness of the alloys is enhanced by sole and composite additions of V and Zr, while it is deteriorated by the addition of Mo. The sole addition of Mo, V or Zr improves the oxidation resistance at 1250 °C, the composite additions of V with Mo/Zr (especially V-Mo-Zr) degrade the oxidation resistance at 1250 °C.
AB - Eight multi-elemental Nb-Si-based alloys with various Mo, V and Zr contents were prepared by vacuum non-consumable arc melting. The cooperative alloying effects of Mo, V and Zr on the arc-melted and heat-treated microstructure, mechanical properties as well as oxidation resistance at 1250 °C of the alloys were evaluated systematically. The results show that except for adding Mo solely, additions of Mo, V and Zr change the microstructure from eutectic to hypereutectic. The additions of Mo, V and Zr suppress the formation of α(Nb, X)5Si3 (“X” represents the alloying elements that substitute for Nb in the lattices), whilst promoting the formation of γ(Nb, X)5Si3. The heat treatment at 1450 °C for 50 h promotes the formation of (Nb, X)3Si phase in the Zr-containing alloys. Alloying with either Mo or Zr improves, and their composite additions more obviously improve the compressive yield strength at 1250 °C as well as the microhardness of γ(Nb, X)5Si3. The room temperature fracture toughness of the alloys is enhanced by sole and composite additions of V and Zr, while it is deteriorated by the addition of Mo. The sole addition of Mo, V or Zr improves the oxidation resistance at 1250 °C, the composite additions of V with Mo/Zr (especially V-Mo-Zr) degrade the oxidation resistance at 1250 °C.
KW - Alloying effect
KW - High-temperature compressive yield strength
KW - Microhardness
KW - Multi-elemental Nb-Si based ultrahigh temperature alloy
KW - Oxidation resistance
KW - Room temperature fracture toughness
UR - http://www.scopus.com/inward/record.url?scp=85133468847&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2022.06.006
DO - 10.1016/j.jmst.2022.06.006
M3 - 文章
AN - SCOPUS:85133468847
SN - 1005-0302
VL - 132
SP - 27
EP - 41
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -