首页> 外文期刊>Journal of Materials Science >Microstructural studies on nanocrystalline oxide dispersion strengthened austenitic (Fe–18Cr–8Ni–2W–0.25Y2O3) alloy synthesized by high energy ball milling and vacuum hot pressing
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Microstructural studies on nanocrystalline oxide dispersion strengthened austenitic (Fe–18Cr–8Ni–2W–0.25Y2O3) alloy synthesized by high energy ball milling and vacuum hot pressing

机译:高能球磨和真空热压合成纳米晶氧化物弥散强化奥氏体(Fe-18Cr-8Ni-2W-0.25Y 2 O 3 )合金的微观组织研究

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摘要

In the present work, nanostructured (Fe–18Cr–8Ni–2W) austenitic base and oxide dispersion strengthened (ODS) alloy powders were produced through mechanical alloying and these nano powders were consolidated by vacuum hot pressing. The results showed that initially bcc solid solution formed in both the alloys and this transformed to fcc with continued milling. The bcc solid solution formation and the subsequent transformation to fcc were significantly faster in the ODS alloys when compared to the base alloy. In the ODS alloy, a grain size of ~25 nm is achieved within 5 h of milling. Study of variation of microhardness of mechanically alloyed powder particles with grain size showed linear Hall–Petch kind of behavior. Following vacuum hot pressing of mechanically alloyed powders, nearly fully dense (>99% of theoretical density) compacts were obtained with a grain size of ~80 nm. The bulk hardness of base and ODS alloys are ~530 and ~900 HV, respectively. These are significantly higher than the values reported in the literature so far. The enhanced strength the ODS alloy is due to increased dislocation density and presence of fine dispersoids along with the nanocrystalline grains.
机译:在目前的工作中,通过机械合金化生产了纳米结构(Fe-18Cr-8Ni-2W)奥氏体基体和氧化物弥散强化(ODS)合金粉末,并通过真空热压将这些纳米粉末固结。结果表明,最初在两种合金中均形成bcc固溶体,并通过持续研磨将其转化为fcc。与基础合金相比,ODS合金中bcc固溶体的形成和随后的转变为fcc明显更快。在ODS合金中,铣削5小时内可达到〜25 nm的晶粒尺寸。对机械合金化粉末颗粒的显微硬度随粒度变化的研究显示出线性的Hall-Petch行为。在对机械合金粉末进行真空热压之后,获得了几乎完全致密(理论密度的> 99%)的压坯,晶粒尺寸约为80 nm。基本合金和ODS合金的整体硬度分别为〜530 HV和〜900 HV。这些显着高于迄今为止文献中报道的值。 ODS合金强度的提高归因于位错密度的增加以及与纳米晶粒一起存在的精细弥散体。

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