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Microstructure and mechanical properties of cp-titanium produced by spark plasma sintering

机译:火花等离子体烧结生产的cp钛的组织和力学性能

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Titanium alloys are of great interest for several applications, but their processing and application is often difficult and expensive. Metal powder processing permits the reduction of material costs because of limited wasting, even if, sintering of titanium powders has to be carried out under controlled atmospheres, with high processing costs. Spark plasma sintering (SPS) is a new technology which permits processing of hard to sinter materials at lower temperatures and in shorter time compared to conventional technologies; furthermore, SPS can be seen as a potential near net shaping production route for non-complex components. In the present work, the use of SPS on commercial purity titanium grade 1 and grade 3 was investigated. Sintering experiments were conducted in the temperature range 700-1150°C for 5 min, under a uniaxial pressure of 60 MPa, in vacuum. Samples obtained at different temperatures were characterised in term of density, microstructure (grain size), interstitial content (C,O,N), hardness, tensile properties; SEM analysis on fracture surfaces of tensile specimen was also carried out. Results were critically discussed and correlated to sintering temperature, in respect to the typical α→β transformation temperature for each grade. Experimental data confirm that very good microstructural, chemical and mechanical properties can be attained after spark plasma sintering at temperature as low as 900°C.
机译:钛合金在几种应用中都引起了极大的兴趣,但是它们的加工和应用通常是困难且昂贵的。金属粉末加工由于有限的浪费而允许降低材料成本,即使钛粉末的烧结必须在受控的气氛下进行,且加工成本很高。火花等离子体烧结(SPS)是一项新技术,与传统技术相比,它可以在较低的温度和较短的时间内处理难以烧结的材料。此外,SPS可以看作是非复杂组件潜在的接近净成形的生产路线。在目前的工作中,对在商业纯度1级和3级钛上使用SPS进行了研究。在真空中在60 MPa的单轴压力下于700-1150°C的温度范围内进行5分钟的烧结实验。根据密度,微观结构(晶粒尺寸),间隙含量(C,O,N),硬度,拉伸性能对在不同温度下获得的样品进行表征。还对拉伸试样的断裂表面进行了SEM分析。对结果进行了严格的讨论,并将结果与​​烧结温度相关(与每个等级的典型α→β相变温度相关)。实验数据证实,在低至900°C的温度下进行火花等离子体烧结后,可以获得非常好的微观结构,化学和机械性能。

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