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Interplay between single phase solid solution strengthening and multi-phase strengthening in the same high entropy alloy

机译:同一高熵合金中单相固溶强化与多相强化之间的相互作用

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摘要

High entropy alloys (HEAs) offer the opportunity to achieve an unprecedented balance of properties by accessing novel multi-scale microstructural combinations. Despite the large range of combinations of strength and ductility reported in HEAs, the complex interplay between multiple strengthening mechanisms has not been addressed. The single-phase fcc solid solution state of the Al0.3CoCrFeNi alloy exhibits a strong Hall-Petch hardening effect with reducing grain size. While the same alloy can be strengthened by a composite-reinforcement effect of hard intermetallic B2 and sigma precipitates, within a fine-grained fcc matrix. Such precipitation leads to solute depletion within the parent fcc matrix, resulting in a substantially reduced Hall-Petch hardening effect. Additional formation of nano-clusters within the fcc matrix can strengthen the same alloy to 1.85 GPa at room temperature, via an Orowan strengthening mechanism. This paper presents the complex interplay between strengthening mechanisms operative at different length scales.
机译:高熵合金(HEA)通过访问新颖的多尺度微结构组合,提供了实现前所未有的性能平衡的机会。尽管HEA中报道了强度和延展性的广泛组合,但尚未解决多种增强机制之间的复杂相互作用。 Al0.3CoCrFeNi合金的单相fcc固溶态表现出很强的Hall-Petch硬化效果,并且具有减小的晶粒尺寸。虽然可以在细颗粒的fcc基质中通过硬金属间B2和σ沉淀的复合增强作用来增强相同的合金。这种沉淀导致母体fcc基质中的溶质耗尽,从而导致Hall-Petch硬化效果大大降低。通过Orowan强化机制,在fcc基质中进一步形成纳米团簇可以在室温下将同一合金强化至1.85 GPa。本文介绍了在不同长度范围内起作用的强化机制之间的复杂相互作用。

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