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Microstructure and mechanical properties of a biomedical β- type titanium alloy subjected to severe plastic deformation after aging treatment

机译:经过时效处理后发生严重塑性变形的生物医学β型钛合金的组织和力学性能

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Strengthening by grain refinement and increasing dislocation density through high-pressure torsion (HPT), which is an attractive technique to fabricate ultrafine grained and nanostructured metallic materials, is expected to provide β-type Ti-29Nb-l3Ta-4.6Zr (TNTZ) higher mechanical strength while maintaining low Young's modulus because they keep the original β phase. However, the ductility shows reverse trend. Greater strength with enhanced ductility can be achieved by controlling precipitated phases through HPT processing after aging treatment. Aged TNTZ subjected to HPT processing at high N exhibits a homogeneous microstructure with ultrafine elongated grains having a high dislocation density and consequently non-equilibrium boundaries and distorted subgrains with non-uniform shapes and nanostructured intergranular precipitates of « phases. Therefore, the effect of HPT processing on the microstructure and mechanical hardness of TNTZ after aging treatment was systematically investigated in this study. TNTZ, which was subjected to aging treatment at 723 K for 259.2 ks in vacuum followed by water quenching, subjected to HPT processing at rotation numbers (N) of 1 to 20 under a pressure of around 1.25 GPa at room temperature. The microstructure of TNTZat consisted of precipitated needle-like α phases in β grains. However, TNTZahpt sX N ≥ 10 comprises very fine a and small amount ω phases in ultrafine β grains. Furthermore, the hardness of every TNTZahpt was totally much greater than that of TNTZ_(AT). The hardness increased from the center to peripheral region of TNTZ_(AHPT)- In addition, the tensile strength of every TNTZ_(AHPT) was greater than that of TNTZ_(AT). The tensile strength of TNTZ_(AHPT) increased, but the elongation decreased with increasing N and then both of them saturated at N≥ 10.
机译:通过细化晶粒增强和通过高压扭转(HPT)增加位错密度,这是制造超细晶粒和纳米结构金属材料的一种有吸引力的技术,有望提供更高的β型Ti-29Nb-l3Ta-4.6Zr(TNTZ)机械强度,同时保持低的杨氏模量,因为它们保留了原始的β相。但是,延展性显示出相反的趋势。通过在时效处理后通过HPT处理控制沉淀相,可以获得更高的强度和延展性。在高氮下进行HPT处理的老化的TNTZ表现出均匀的微观结构,具有超细的细长晶粒,具有高的位错密度,因此具有不平衡的边界,形状不均匀的变形亚晶粒和n相的纳米结构晶间析出物。因此,本研究系统地研究了HPT加工对时效处理后TNTZ的组织和机械硬度的影响。 TNTZ在真空中于723 K进行了259.2 ks的时效处理,然后水淬,然后在1.25 GPa的压力下于室温下以1至20的转数(N)进行HPT处理。 TNTZat的微观结构由β晶粒中沉淀的针状α相组成。但是,TNTZahpt sX N≥10在超细β晶粒中包含非常细的a相和少量的ω相。此外,每个TNTZahpt的硬度都完全大于TNTZ_(AT)的硬度。硬度从TNTZ_(AHPT)的中心到周边区域增加-此外,每个TNTZ_(AHPT)的抗拉强度都大于TNTZ_(AT)的抗拉强度。 TNTZ_(AHPT)的抗拉强度增加,但伸长率随N的增加而降低,然后都在N≥10时达到饱和。

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