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Cyclic deformation characteristics of the metastable β-type Ti-40Nb alloy

机译:亚稳β型Ti-40Nb合金的循环变形特性

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The present study investigates the cyclic deformation behavior of a new metastable beta-type Ti-40Nb alloy (wt%) in two different microstructural conditions. Severe cold rolling followed by recrystallization annealing were performed on cast and homogenized Ti-40Nb rods to obtain a single beta-phase microstructure at room temperature. Additional aging at 573 K was carried out to generate isothermal omega-phase precipitates in the beta-matrix. Fatigue tests at cycles up to 2 x 10(6) and a stress ratio of R = -1 were realized with samples with electrochemically polished surfaces. EBSD analysis was carried out after the fatigue tests. Furthermore, detailed fractographic investigations as well as TEM analysis were executed. Results revealed significant differences in the cyclic deformation behavior and a higher fatigue strength for the aged condition. Reasons for superior fatigue properties of the aged condition are a pronounced precipitation hardening effect of the omega-phase as well as a complete suppression of stress-induced martensite formation and deformation twinning due to a barrier function of the omega-precipitates. In the vicinity of the fatigue crack tip, where the localized plastic zone dominates the damage evolution, precipitation-depleted channels can be observed. Within these omega-depleted channels dislocations have an increased mobility, allowing highly localized plastic deformation. Signs of other deformation features with increasing distance to the fatigue crack are not observed. EBSD analysis of the recrystallized samples with initial single beta-phase showed on the contrary changes in the microstructure caused by the cyclic loading and the high instability of the beta-phase. A dominant development of stress-induced alpha ''-martensite towards a full martensitic microstructure dependent on the applied stress amplitudes and cycles as well as additional isolated {332} 113 twinning were detected.
机译:本研究调查了一种新的亚稳态β型Ti-40Nb合金(wt%)在两种不同的微结构条件下的循环变形行为。在铸锭和均质的Ti-40Nb棒上进行严重的冷轧,然后进行再结晶退火,从而在室温下获得单一的β相显微组织。进行了573 K的额外时效处理,以在β矩阵中生成等温的ω相沉淀。对于具有电化学抛光表面的样品,可以进行高达2 x 10(6)的循环疲劳试验,应力比为R = -1。疲劳测试后进行了EBSD分析。此外,还进行了详细的分形学研究以及TEM分析。结果显示,在老化条件下,循环变形行为存在明显差异,疲劳强度更高。老化条件下具有优异疲劳性能的原因是ω相具有明显的沉淀硬化作用,并且由于ω-析出物的阻隔作用而完全抑制了应力诱导的马氏体形成和变形孪生。在疲劳裂纹尖端附近,局部塑性区主导损伤演化,可以观察到析出的通道。在这些欧米茄耗尽的通道内,位错具有增加的迁移率,从而允许高度局部的塑性变形。没有观察到其他变形特征随疲劳裂纹距离的增加而增加的迹象。具有初始单一β相的重结晶样品的EBSD分析表明,相反的是,循环加载和β相的高度不稳定性导致微观结构发生变化。检测到应力诱导的α'-马氏体向着完整的马氏体微观结构的主要发展,这取决于所施加的应力幅度和周期以及其他孤立的{332} <113>孪晶。

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