YB6原位反应增强与冷轧协同调控TiNi合金微观结构及强塑化行为

Synergistic regulation of microstructure and strength–ductility behavior in TiNi alloy by in situ reaction reinforcement with YB6 and cold rolling

  • 摘要: 近等原子TiNi形状记忆合金仍面临着强度和塑性不足的问题,成为制约其应用的主要瓶颈之一。本研究采用真空电弧熔炼制备了微量YB6添加的系列TiNi合金,并结合多道次冷轧/中间退火工艺,系统研究了YB6原位反应与塑性形变对合金显微组织、力学性能及形状记忆效应的协同调控机制。DSC与XRD结果表明,各合金均发生B2↔B19′一步马氏体相变,且YB6添加使相变温度整体上移。TEM证实YB6在基体中原位生成TiB2长条状晶须与NiY颗粒,其中TiB2与B19′基体形成半共格界面,有利于界面稳定结合与载荷高效传递,从而与弥散强化和细晶强化共同作用实现强韧化。当YB6添加量为0.02wt.%时,平均晶粒由8.71 μm细化至4.01 μm,抗拉强度由504.0 MPa提升至626.6 MPa,断后伸长率由5.6%提高至8.07%。在此基础上,经60%总变形量四道次冷轧后,晶粒呈显著纤维化并在横向进一步细化至3.78 μm,同时形成高密度位错胞与001Ⅰ型马氏体孪晶,使抗拉强度进一步提升至745.7 MPa、断后伸长率增至14.9%,断裂模式转变为典型韧性断裂。形状记忆测试显示,0.02wt.% YB6合金在6%与9%预应变下形状恢复率分别为93.3%与86.7%,在显著提升强塑性的同时保持了优良的形状恢复能力。本研究提出的“原位反应增强相引入+多道次冷轧形变”复合调控策略,为高性能TiNi形状记忆合金的强度-塑性-功能协同优化提供了可行路径。

     

    Abstract: Near-equiatomic TiNi shape memory alloys still suffer from insufficient strength and ductility, which remains one of the major bottlenecks restricting their practical applications. In this study, a series of TiNi alloys with minor YB6 additions were fabricated by vacuum arc melting. Combined with a multi-pass cold rolling/intermediate annealing process, the synergistic effects of the in situ reaction induced by YB6 and plastic deformation on the microstructure, mechanical properties, and shape memory effect of the alloys were systematically investigated. DSC and XRD results indicate that all alloys undergo a one-step B2↔B19′ martensitic transformation, and the addition of YB6 shifts the transformation temperatures to higher values overall. TEM observations confirm that YB6 reacts in situ with the matrix to form elongated TiB2 whiskers and NiY particles. Among them, TiB2 forms a semi-coherent interface with the B19′ matrix, which is beneficial for stable interfacial bonding and efficient load transfer, thereby contributing to strengthening and toughening in combination with dispersion strengthening and grain refinement strengthening. When the YB6 addition is 0.02wt.%, the average grain size is refined from 8.71 μm to 4.01 μm, the ultimate tensile strength increases from 504.0 MPa to 626.6 MPa, and the elongation after fracture improves from 5.6% to 8.07%. On this basis, after four-pass cold rolling with a total deformation of 60%, the grains become markedly fibrous and are further refined to 3.78 μm in the transverse direction. Meanwhile, a high density of dislocation cells and 001 Type I martensitic twins are formed, leading to a further increase in ultimate tensile strength to 745.7 MPa and elongation after fracture to 14.9%, with the fracture mode changing to typical ductile fracture. Shape memory tests show that the 0.02wt.% YB6-added alloy exhibits shape recovery rates of 93.3% and 86.7% under pre-strains of 6% and 9%, respectively, maintaining excellent shape recovery capability while significantly enhancing both strength and ductility. The composite regulation strategy proposed in this work, namely the introduction of in situ reaction-derived reinforcing phases combined with multi-pass cold-rolling deformation, provides a feasible route for the synergistic optimization of strength, ductility, and functional properties in high-performance TiNi shape memory alloys.

     

/

返回文章
返回