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Deformation at ambient and high temperature of in situ Laves phases-ferrite composites

机译:Laves原位-铁氧体复合材料在室温和高温下的变形

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摘要

The mechanical behavior of a Fe80Zr10Cr10 alloy has been studied at ambient and high temperature. This Fe80Zr10Cr10 alloy, whoose microstructure is formed by alternate lamellae of Laves phase and ferrite, constitutes a very simple example of an in situ CMA phase composite. The role of the Laves phase type was investigated in a previous study while the present work focuses on the influence of the microstructure length scale owing to a series of alloys cast at different cooling rates that display microstructures with Laves phase lamellae width ranging from ∼50 nm to ∼150 nm. Room temperature compression tests have revealed a very high strength (up to 2 GPa) combined with a very high ductility (up to 35%). Both strength and ductility increase with reduction of the lamella width. High temperature compression tests have shown that a high strength (900 MPa) is maintained up to 873 K. Microstructural study of the deformed samples suggests that the confinement of dislocations in the ferrite lamellae is responsible for strengthening at both ambient and high temperature. The microstructure scale in addition to CMA phase structural features stands then as a key parameter for optimization of mechanical properties of CMA in situ composites.
机译:研究了Fe80Zr10Cr10合金在室温和高温下的力学行为。这种Fe80Zr10Cr10合金的微观结构由Laves相和铁素体的交替薄片形成,是原位CMA相复合材料的非常简单的例子。在先前的研究中研究了Laves相类型的作用,而当前的工作集中在微观结构长度尺度的影响上,这是由于在不同冷却速率下铸造的一系列合金显示出具有Laves相薄片宽度约50 nm的微观结构的合金。至〜150nm。室温压缩测试显示出很高的强度(高达2 GPa)和很高的延展性(高达35%)。强度和延展性都随着薄片宽度的减小而增加。高温压缩试验表明,最高强度(900 MPa)可保持到873K。变形样品的微观结构研究表明,在环境温度和高温下,铁素体薄片中位错的局限是强化的原因。然后,除了CMA相结构特征外,微观结构尺度成为优化CMA原位复合材料力学性能的关键参数。

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