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High-content ductile coherent nanoprecipitates achieve ultrastrong high-entropy alloys

机译:高含量的韧性相干纳米沉淀可实现超强高熵合金

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摘要

Precipitation-hardening high-entropy alloys (PH-HEAs) with good strength−ductility balances are a promising candidate for advanced structural applications. However, current HEAs emphasize near-equiatomic initial compositions, which limit the increase of intermetallic precipitates that are closely related to the alloy strength. Here we present a strategy to design ultrastrong HEAs with high-content nanoprecipitates by phase separation, which can generate a near-equiatomic matrix in situ while forming strengthening phases, producing a PH-HEA regardless of the initial atomic ratio. Accordingly, we develop a non-equiatomic alloy that utilizes spinodal decomposition to create a low-misfit coherent nanostructure combining a near-equiatomic disordered face-centered-cubic (FCC) matrix with high-content ductile Ni3Al-type ordered nanoprecipitates. We find that this spinodal order–disorder nanostructure contributes to a strength increase of ~1.5 GPa (>560%) relative to the HEA without precipitation, achieving one of the highest tensile strength (1.9 GPa) among all bulk HEAs reported previously while retaining good ductility (>9%).
机译:具有良好强度-延展性平衡的沉淀硬化高熵合金(PH-HEA)是用于高级结构应用的有前途的候选人。但是,当前的HEA强调接近准原子的初始组成,这限制了与合金强度密切相关的金属间沉淀物的增加。在这里,我们提出一种通过相分离设计具有高含量纳米沉淀物的超强型HEA的策略,这种超强HEA可以在原位生成近等原子的基体,同时形成强化相,无论初始原子比如何,都可以生成PH-HEA。因此,我们开发了一种非等原子的合金,该合金利用旋节线分解来创建低失配的相干纳米结构,该结构将近等原子的无序面心立方(FCC)基质与高含量的延展性Ni3Al型有序纳米沉淀相结合。我们发现,相对于没有沉淀的HEA,这种旋节状有序无序纳米结构有助于使强度增加了约1.5 GPa(> 560%),达到了先前报道的所有本体HEA中最高的拉伸强度(1.9(GPa)之一,同时保持了良好的稳定性。延展性(> 9%)。

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