Wang Shao-Ping, Xu Jian
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang, 110016, China.
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang, 110016, China.
Mater Sci Eng C Mater Biol Appl. 2017 Apr 1;73:80-89. doi: 10.1016/j.msec.2016.12.057. Epub 2016 Dec 15.
Combining the high-entropy alloy (HEA) concept with property requirement for orthopedic implants, we designed a TiZrNbTaMo equiatomic HEA. The arc-melted microstructures, compressive properties and potentiodynamic polarization behavior in phosphate buffer solution (PBS) were studied in detail. It was revealed that the as-cast TiZrNbTaMo HEA consisted of dual phases with bcc structure, major bcc1 and minor bcc2 phases with the lattice parameters of 0.3310nm and 0.3379nm, respectively. As confirmed by nanoindentation tests, the bcc1 phase is somewhat harder and stiffer than the bcc2 phase. The TiZrNbTaMo HEA exhibited Young's modulus of 153GPa, Vickers microhardness of 4.9GPa, compressive yield strength of σ=1390MPa and apparent plastic strain of ε≈6% prior to failure. Moreover, the TiZrNbTaMo HEA manifested excellent corrosion resistance in PBS, comparable to the Ti6Al4V alloy, and pitting resistance remarkably superior to the 316L SS and CoCrMo alloys. These preliminary advantages of the TiZrNbTaMo HEA over the current orthopedic implant metals in mechanical properties and corrosion resistance offer an opportunity to explore new orthopedic-implant alloys based on the TiZrNbTaMo concentrated composition.
将高熵合金(HEA)概念与骨科植入物的性能要求相结合,我们设计了一种TiZrNbTaMo等原子高熵合金。详细研究了电弧熔炼后的微观结构、压缩性能以及在磷酸盐缓冲溶液(PBS)中的动电位极化行为。结果表明,铸态TiZrNbTaMo高熵合金由具有体心立方(bcc)结构的双相组成,主要为bcc1相和少量bcc2相,其晶格参数分别为0.3310nm和0.3379nm。通过纳米压痕测试证实,bcc1相比bcc2相稍硬且更具刚性。TiZrNbTaMo高熵合金的杨氏模量为153GPa,维氏显微硬度为4.9GPa,压缩屈服强度σ = 1390MPa,失效前的表观塑性应变为ε≈6%。此外,TiZrNbTaMo高熵合金在PBS中表现出优异的耐腐蚀性,与Ti6Al4V合金相当,耐点蚀性明显优于316L不锈钢和CoCrMo合金。TiZrNbTaMo高熵合金在机械性能和耐腐蚀性方面相对于目前的骨科植入金属的这些初步优势,为探索基于TiZrNbTaMo集中成分的新型骨科植入合金提供了机会。