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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >In-situ observation of S/L interface migration and mechanical property increase of Inconel 600 alloy prepared by electromagnetic levitation
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In-situ observation of S/L interface migration and mechanical property increase of Inconel 600 alloy prepared by electromagnetic levitation

机译:S / L界面迁移和电磁升定制备的Inconel 600合金的机械性能增加的原位观察

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摘要

The Inconel 600 alloy was highly undercooled and its S/L interface migration during recalescence was observed in real time by using the electromagnetic levitation (EML) system. The characteristic of S/L in-terface migration and the dendritic growth velocity are strongly dependent on undercooling. At a small undercooling, the gamma phase nucleates and grows to the undercooled melt with a sharp interface, and the corresponding microstructure appears as dendrite with strong texture. Nevertheless, once the undercooling exceeds the critical undercooling the sharp S/L interface transforms to a planar shape, which is attributed to the formation of equiaxed grain with a diffused orientation distribution. The 60 degrees <111> annealing twins are generated only when the undercooling is larger than 130 K, due to the obvious recrystallization and sufficient driving force. Besides, the compressive tests were performed on the bulk Inconel 600 alloy samples. The results demonstrate that the elastic modulus is affected little by the undercooling, however, the yield strength obviously increases with the enhancement of undercooling. The strengthening mechanism is mainly ascribed to the formation of sub grain boundaries and annealing twins. (C) 2021 Elsevier B.V. All rights reserved.
机译:Inconel 600合金是高度过冷的合金,利用电磁悬浮(EML)系统实时观察了其再辉过程中的S/L界面迁移。界面迁移的S/L特性和枝晶生长速度强烈依赖于过冷度。在较小的过冷度下,γ相形核并生长为具有尖锐界面的过冷熔体,相应的微观结构表现为具有强烈织构的枝晶。然而,一旦过冷度超过临界过冷度,尖锐的S/L界面将转变为平面形状,这归因于具有扩散取向分布的等轴晶粒的形成。由于明显的再结晶和足够的驱动力,只有当过冷度大于130k时,才会产生60度<111>的退火孪晶。此外,还对大块Inconel 600合金样品进行了压缩试验。结果表明,过冷度对弹性模量影响不大,但屈服强度随过冷度的增加而明显增加。强化机制主要归因于亚晶界和退火孪晶的形成。(c)2021爱思唯尔B.V.保留所有权利。

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