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首页> 外文期刊>Journal of Materials Engineering and Performance >High-Temperature Deformation Behavior of a Ti-6Al-7Nb Alloy in Dual-Phase (a plus beta) and Single-Phase (beta) Regions
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High-Temperature Deformation Behavior of a Ti-6Al-7Nb Alloy in Dual-Phase (a plus beta) and Single-Phase (beta) Regions

机译:Ti-6Al-7Nb合金在双相(a加β)和单相(β)区域的高温变形行为

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摘要

The present study aimed to characterizing the microstructure evolution of a Ti-6Al-7Nb biomedical type titanium alloy during hot working through hot compression tests. The hot deformation cycles were conducted under the strain rate of 0.0025, 0.025, and 0.25 s(-1) in the temperature range of 850-1150 degrees C where both dual-phase (alpha + beta) and single-phase (beta) regions could be accessible. The flow stress behavior of the material for the entire deformation regime was interpreted via microstructural observations. The results indicated that in the single-phase beta region (1050-1150 degrees C), the dynamically recrystallized (DRX) grains were formed at the deformed and elongated beta grain boundaries as a necklace-like structure. The variations in the dynamically recrystallized grain size were determined to follow the Zener-Hollomon relationship where DRX grain size was decreased by reducing the temperature and increasing the strain rate. The alloy deformation characteristics in alpha + beta region were somewhat different. During deformation in the upper alpha + beta temperature range (e.g., 1000 degrees C), the beta phase would accommodate most of the deformation, while alpha regions remained undeformed. In the lower alpha + beta temperature range (e.g., 850-950 degrees C), the kinking/bending of alpha lamellae as well as the subsequent globularization of alpha layers were postulated to be responsible for the observed flow softening behavior.
机译:本研究旨在通过热压缩试验表征热加工过程中Ti-6Al-7Nb生物医学型钛合金的微观组织演变。热变形循环是在850-1150摄氏度的温度范围内以0.0025、0.025和0.25 s(-1)的应变率进行的,其中双相(alpha + beta)和单相(beta)区域可以访问。通过微观结构观察解释了材料在整个变形状态下的流变应力行为。结果表明,在单相β区域(1050-1150摄氏度)中,动态再结晶(DRX)晶粒在变形和伸长的β晶粒边界处形成了项链状结构。确定动态再结晶晶粒尺寸的变化,以遵循齐纳-所罗门关系,其中通过降低温度和增加应变率来减小DRX晶粒尺寸。 α+β区域的合金变形特性有所不同。在较高的α+β温度范围内(例如1000摄氏度)变形期间,β相将适应大部分变形,而α区域保持未变形。在较低的α+β温度范围内(例如850-950摄氏度),α薄片的扭结/弯曲以及随后的α层球状化被认为是所观察到的流动软化行为的原因。

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