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Microstructural Design for Improving Ductility of An Initially Brittle Refractory High Entropy Alloy

机译:改善脆性难熔高熵合金延展性的显微组织设计

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摘要

Typically, refractory high-entropy alloys (RHEAs), comprising a two-phase ordered B2 + BCC microstructure, exhibit extraordinarily high yield strengths, but poor ductility at room temperature, limiting their engineering application. The poor ductility is attributed to the continuous matrix being the ordered B2 phase in these alloys. This paper presents a novel approach to microstructural engineering of RHEAs to form an “inverted” BCC + B2 microstructure with discrete B2 precipitates dispersed within a continuous BCC matrix, resulting in improved room temperature compressive ductility, while maintaining high yield strength at both room and elevated temperature.
机译:通常,具有两相有序B2 + BCC微观结构的难熔高熵合金(RHEA)具有极高的屈服强度,但在室温下延展性差,限制了它们的工程应用。延展性差归因于这些合金中的连续基体是有序的B2相。本文提出了一种新的RHEA微结构工程方法,以形成“倒置”的BCC + B2微结构,离散的B2沉淀物分散在连续的BCC基质中,从而提高了室温压缩延展性,同时在室温和高温下均保持了高屈服强度温度。

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