TY - JOUR
T1 - Phase stability and hardness of some ternary Ti-Zr based shape memory alloys
AU - Li, Yan
AU - Ru, Zhifang
AU - Cui, Yan
AU - Luo, Kun
PY - 2011/12/1
Y1 - 2011/12/1
N2 - The phase stability and hardness of Ti-30Zr-M (M=Nb, V, Cr, Mo, Fe, Ni and Al) shape memory alloys were investigated by structural observations, d-electron alloy design and microhardness tests. Optical microscopy and X-ray diffraction results show that Nb, V, Cr, Mo and Fe are all β-stability elements in Ti-30Zr-M alloys with the effect enhanced by the presence of Zr. The composition of the least stable β-phase alloy values of Nb, V, Cr, Mo and Fe in Ti-30Zr alloys are 12%, 9%, 5%, 3% and 2%, respectively, indicating an increasing sequence of the α-stability ability. Ni and Al show β-stability or moderate effects and the addition of Ni induces the appearance of (Ti, Zr)2Ni phase in Ti-30Zr-5/15Ni alloys. Based on the d-electron alloy design method, the bond order of Ti and alloying atoms (Bo) and the metal d-orbital energy level (Md) are calculated to build the - diagram of Ti-30Zr-M alloys associated with the phase structure identification. The microhardness of Ti-30Zr alloy is increased by addition of a small amount of the alloying element, except for Nb. There is a drop of the microhardness of each Ti-30Zr-M alloys when phase appears by the addition of more alloying elements.
AB - The phase stability and hardness of Ti-30Zr-M (M=Nb, V, Cr, Mo, Fe, Ni and Al) shape memory alloys were investigated by structural observations, d-electron alloy design and microhardness tests. Optical microscopy and X-ray diffraction results show that Nb, V, Cr, Mo and Fe are all β-stability elements in Ti-30Zr-M alloys with the effect enhanced by the presence of Zr. The composition of the least stable β-phase alloy values of Nb, V, Cr, Mo and Fe in Ti-30Zr alloys are 12%, 9%, 5%, 3% and 2%, respectively, indicating an increasing sequence of the α-stability ability. Ni and Al show β-stability or moderate effects and the addition of Ni induces the appearance of (Ti, Zr)2Ni phase in Ti-30Zr-5/15Ni alloys. Based on the d-electron alloy design method, the bond order of Ti and alloying atoms (Bo) and the metal d-orbital energy level (Md) are calculated to build the - diagram of Ti-30Zr-M alloys associated with the phase structure identification. The microhardness of Ti-30Zr alloy is increased by addition of a small amount of the alloying element, except for Nb. There is a drop of the microhardness of each Ti-30Zr-M alloys when phase appears by the addition of more alloying elements.
KW - Ti-Zr shape memory alloy
KW - d-electron alloy design
KW - martensitic transformation
KW - microstructure
UR - https://www.scopus.com/pages/publications/84860683199
U2 - 10.1080/19475411.2011.616952
DO - 10.1080/19475411.2011.616952
M3 - 文章
AN - SCOPUS:84860683199
SN - 1947-5411
VL - 2
SP - 272
EP - 282
JO - International Journal of Smart and Nano Materials
JF - International Journal of Smart and Nano Materials
IS - 4
ER -