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A Comparison between Growth Morphology of 'Eutectic' Cells/Dendrites and Single-Phase Cells/Dendrites

机译:“共晶”细胞/树突与单相细胞/树突的生长形态比较

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摘要

Directionally solidified (DS) intermetallic and ceramic-based eutectic alloys with an in-situ composite microstructure containing finely distributed, long aspect ratio, fiber, or plate reinforcements are being seriously examined for several advanced aero-propulsion applications. In designing these alloys, additional solutes need to be added to the base eutectic composition in order to improve heir high-temperature strength, and provide for adequate toughness and resistance to environmental degradation. Solute addition, however, promotes instability at the planar liquid-solid interface resulting in the formation of two-phase eutectic "colonies." Because morphology of eutectic colonies is very similar to the single-phase cells and dendrites, the stability analysis of Mullins and Sekerka has been extended to describe their formation. Onset of their formation shows a good agreement with this approach; however, unlike the single-phase cells and dendrites, there is limited examination of their growth speed dependence of spacing, morphology, and spatial distribution. The purpose of this study is to compare the growth speed dependence of the morphology, spacing, and spatial distribution of eutectic cells and dendrites with that for the single-phase cells and dendrites.
机译:具有多种分布,长径比,纤维或板增强材料的原位复合微观结构的定向凝固(DS)金属间和陶瓷基低共熔合金正在针对几种先进的航空推进应用进行认真研究。在设计这些合金时,需要向基础共晶成分中添加其他溶质,以改善继承人的高温强度,并提供足够的韧性和耐环境降解性。然而,添加溶质会促进平面液-固界面处的不稳定性,从而导致两相共晶“菌落”的形成。由于共晶菌落的形态与单相细胞和树突非常相似,因此对Mullins和Sekerka的稳定性进行了扩展以描述其形成。它们的形成开始表明与这种方法有很好的一致性。但是,与单相细胞和树突不同,它们对间距,形态和空间分布的生长速度依赖性的检查受到限制。这项研究的目的是比较共晶细胞和树突的形态,间距和空间分布与单相细胞和树突的生长速度依赖性。

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