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首页> 外文期刊>Journal of Microscopy >Transmission electron microscopy studies of microstructure of Ti-Nb and Ti-Ta alloys after ball milling and hot consolidation
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Transmission electron microscopy studies of microstructure of Ti-Nb and Ti-Ta alloys after ball milling and hot consolidation

机译:球磨和热固结后Ti-Nb和Ti-Ta合金的显微组织的透射电子显微镜研究

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摘要

Two Ti alloys with compositions Ti-10Ta and Ti-10Nb (at.%) were milled in a high-energy mill for a maximum of 80 h in an argon atmosphere. A nanocrystalline structure of alpha-Ti(X) (X = Ta or Nb) solid solution was formed in both investigated alloys after milling, as shown by X-ray diffraction. Transmission electron microscopy observations of powders milled for 80 h revealed chemical inhomogeneity of particles in nanometre-scale regions and an average crystallite size of about 10 nm. The pulse plasma sintering method was applied for hot consolidation of milled powders. The mean density of pulse plasma sintering compacts of Ti-Nb alloy was about 99.5% of the theoretical value, whereas the density of the Ti-10Ta sample was lower, close to 92% of the theoretical value. Transmission electron microscopy observation of compacted samples showed that the sintering process caused the formation of a two-phase alpha + beta structure in both investigated alloys, with a mean grain size of 220 nm. The chemical inhomogeneity and high degree of deformation in nanometre-scale regions of milled powders led to a martensitic transformation, resulting in formation of a 9R martensite structure.
机译:将两种成分为Ti-10Ta和Ti-10Nb(at。%)的Ti合金在高能磨中在氩气氛中研磨最多80小时。 X射线衍射表明,两种研究的合金在研磨后均形成了α-Ti(X)(X = Ta或Nb)固溶体的纳米晶体结构。研磨80 h的粉末的透射电子显微镜观察显示,纳米级区域的颗粒化学不均一,平均晶粒尺寸约为10 nm。脉冲等离子体烧结法被用于研磨粉的热固结。 Ti-Nb合金的脉冲等离子体烧结压块的平均密度约为理论值的99.5%,而Ti-10Ta样品的密度较低,接近理论值的92%。透射电子显微镜对压实样品的观察表明,烧结过程在两种所研究的合金中均形成了两相α+β结构,平均晶粒尺寸为220 nm。研磨粉的纳米级区域中的化学不均匀性和高度变形导致马氏体相变,从而形成9R马氏体结构。

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