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The High Temperature Tensile and Creep Behaviors of High Entropy Superalloy

机译:高熵高温合金的高温拉伸和蠕变行为

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摘要

This article presents the high temperature tensile and creep behaviors of a novel high entropy alloy (HEA). The microstructure of this HEA resembles that of advanced superalloys with a high entropy FCC matrix and L12 ordered precipitates, so it is also named as “high entropy superalloy (HESA)”. The tensile yield strengths of HESA surpass those of the reported HEAs from room temperature to elevated temperatures; furthermore, its creep resistance at 982 °C can be compared to those of some Ni-based superalloys. Analysis on experimental results indicate that HESA could be strengthened by the low stacking-fault energy of the matrix, high anti-phase boundary energy of the strengthening precipitate, and thermally stable microstructure. Positive misfit between FCC matrix and precipitate has yielded parallel raft microstructure during creep at 982 °C, and the creep curves of HESA were dominated by tertiary creep behavior. To the best of authors’ knowledge, this article is the first to present the elevated temperature tensile creep study on full scale specimens of a high entropy alloy, and the potential of HESA for high temperature structural application is discussed.
机译:本文介绍了一种新型的高熵合金(HEA)的高温拉伸和蠕变行为。该HEA的微观结构类似于具有高熵FCC基质和L12有序析出物的高级高温合金,因此也被称为“高熵高温合金(HESA)”。从室温到高温,HESA的拉伸屈服强度都超过了已报道的HEA。此外,其在982 C的抗蠕变性可与某些镍基高温合金相比。对实验结果的分析表明,基质的低堆垛层错能,强化沉淀物的高反相边界能和热稳定的微观结构可以增强HESA。 FCC基质与沉淀物之间的正失配已在982°C的蠕变过程中产生了平行的筏微结构,而HESA的蠕变曲线主要由第三蠕变行为决定。据作者所知,本文是第一篇对高熵合金的全尺寸试样进行高温拉伸蠕变研究的文章,并讨论了HESA在高温结构应用中的潜力。

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