School of Engineering, Edith Cowan University, 270 Joondalup Drive, Joondalup, Perth, WA 6027, Australia.
School of Engineering, The University of Western Australia, 35 Stirling Highway, Perth, WA 6009, Australia.
Mater Sci Eng C Mater Biol Appl. 2020 May;110:110728. doi: 10.1016/j.msec.2020.110728. Epub 2020 Feb 3.
In order to achieve an effective balance between plasticity and strength, a group of Ti-26Nb-xZr-yMn (x = 4, 7, 10 wt% and y = 3, 5 wt%) alloys were designed to evaluate the effects of Mn and Zr on the microstructures, mechanical properties and strengthening effects of the TiNb system. All the investigated alloys illustrate a monolithic β phase in their microstructure and they all possess substantial true plasticity (160%) and true maximum strength ( 950 MPa) without fracture during the compression tests within the load capacity of 100 kN. The contribution of solid-solution, grain-boundary and dislocation strengthening mechanisms have been evaluated using the strengthening model for β Ti alloys for all the investigated alloys. Among the investigated alloys, Ti-26Nb-4Zr-5Mn demonstrates the highest true yield strength (654 MPa), dislocation density (2.45 × 10 m) and hardness (242 HV) along with improved strain hardening ability in terms of strain hardening indices (0.42 and 0.09). Furthermore, based on the superior mechanical properties among the investigated alloys, the electrochemical performance of Ti-26Nb-4Zr-3Mn and Ti-26Nb-4Zr-5Mn have also been analyzed in this work. The electrochemical measurements show that both alloys have almost similar corrosion potential and corrosion current density in simulated body fluid, i.e., -0.45 V and 0.838 nA/cm for Ti-26Nb-4Zr-3Mn, -0.48 V and 0.839 nA/cm for Ti-26Nb-4Zr-5Mn, respectively.
为了在可塑性和强度之间实现有效的平衡,设计了一组 Ti-26Nb-xZr-yMn(x=4、7、10wt%,y=3、5wt%)合金,以评估 Mn 和 Zr 对 TiNb 系统微观结构、力学性能和强化效果的影响。所有研究的合金在其微观结构中都呈现出单一的β相,它们在 100kN 载荷能力范围内的压缩试验中都表现出很大的真实塑性(160%)和真实最大强度(950MPa)而不会断裂。利用β Ti 合金的强化模型,评估了固溶、晶界和位错强化机制对所有研究合金的强化贡献。在所研究的合金中,Ti-26Nb-4Zr-5Mn 表现出最高的真实屈服强度(654MPa)、位错密度(2.45×10m)和硬度(242HV),以及提高应变硬化能力的应变硬化指数(0.42 和 0.09)。此外,基于在所研究的合金中具有优越的机械性能,还分析了 Ti-26Nb-4Zr-3Mn 和 Ti-26Nb-4Zr-5Mn 的电化学性能。电化学测量表明,两种合金在模拟体液中的腐蚀电位和腐蚀电流密度几乎相同,即 Ti-26Nb-4Zr-3Mn 为-0.45V 和 0.838nA/cm,Ti-26Nb-4Zr-5Mn 为-0.48V 和 0.839nA/cm。