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首页> 外文期刊>Materials Research >Effect of Thermo-Mechanical Treatments on the Microstructure and Mechanical Properties of the Metastable β-type Ti-35Nb-7Zr-5Ta Alloy
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Effect of Thermo-Mechanical Treatments on the Microstructure and Mechanical Properties of the Metastable β-type Ti-35Nb-7Zr-5Ta Alloy

机译:热处理对亚稳β型Ti-35Nb-7Zr-5Ta合金组织和力学性能的影响

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摘要

In this work, theoretical composition design and thermo-mechanical treatments were combined in order to improve the mechanical compatibility of a biomedical β-type titanium alloy. By applying a composition design theory, cold rolling and low temperature aging, a metastable β-type Ti-35Nb-7Zr-5Ta (wt%) alloy with an elastic modulus of 47 GPa and a yield strength of 730 MPa was successfully fabricated. This combination of high yield strength and low elastic modulus resulted in enhanced elastic recoverable strain of 1.7%, which is much higher than that of the conventional metallic biomaterials. The microstructure responsible for the much sought-after mechanical properties was observed to be mainly consisted of a homogeneous distribution of nanometer-sized ω- and α-precipitates in a β-phase matrix obtained via cold rolling plus short-time aging at low temperature, i.e. aging at 673 K for 20 min. These precipitates increase the strength of the material by hindering the motion of dislocations while the β-matrix with relatively low content of β-stabilizers gives rise to the observed low elastic modulus. By extending aging time, a higher strength is reached at the expense of an undesirable increasing in elastic modulus.
机译:在这项工作中,理论组成设计和热机械处理相结合,以提高生物医学β型钛合金的机械相容性。通过应用成分设计理论,冷轧和低温时效,成功制备了弹性模量为47 GPa,屈服强度为730 MPa的亚稳态β型Ti-35Nb-7Zr-5Ta(wt%)合金。高屈服强度和低弹性模量的这种结合产生了1.7%的增强的弹性可恢复应变,远高于常规金属生物材料的弹性可恢复应变。观察到引起广泛追捧的机械性能的微观结构主要由通过冷轧和在低温下短时效获得的β相基质中纳米尺寸的ω-和α-沉淀物的均匀分布组成,即在673 K下老化20分钟。这些沉淀物通过阻碍位错的运动而增加了材料的强度,而β-稳定剂含量相对较低的β-基质则产生了较低的弹性模量。通过延长老化时间,以不希望的弹性模量增加为代价达到了更高的强度。

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