Tensile Properties of a Non-Equiatomic Ni–Co–V Medium Entropy Alloy at Cryogenic Temperature

Metals Pub Date : 2024-05-17 DOI:10.3390/met14050590
Dawei Zhou, Caijuan Shi, Caixia Wang, Ruixin Sheng, Weidong Li, Yang Tong
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Abstract

The development of strong and ductile alloys for application in cryogenic temperatures has long been sought after. In this work, we have developed a face-centered cubic Ni10Co56.5V33.5 multi-principal element alloy (MPEA) that exhibits a balanced combination of high strength and good ductility at 77 K, based on the considerations of large local lattice distortion (LLD) and low stacking fault energy. The small-grained Ni10Co56.5V33.5 MPEA exhibits a yield strength of 1400 MPa and an ultimate tensile strength of 1890 MPa, while preserving a good ductility of 23%. Moreover, precession electron diffraction and transmission electron microscopy revealed multiple deformation mechanisms, including wavy dislocations, atypically severely twisted dislocation bands, hierarchical stacking faults, and deformation twins, which are implicated in the alloy’s outstanding mechanical performance. These insights offer a strategic guide for the design of strong and ductile alloys, particularly for utilization in extreme environments.
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非等原子镍-氯-钒中熵合金在低温下的拉伸特性
长期以来,人们一直在寻求开发适用于低温环境的高强度韧性合金。在这项工作中,我们开发了一种面心立方 Ni10Co56.5V33.5 多主元素合金 (MPEA),基于大局部晶格畸变 (LLD) 和低堆积断层能的考虑,该合金在 77 K 时表现出高强度和良好延展性的平衡组合。小晶粒 Ni10Co56.5V33.5 MPEA 的屈服强度为 1400 兆帕,极限拉伸强度为 1890 兆帕,同时保持了 23% 的良好延展性。此外,前驱电子衍射和透射电子显微镜还揭示了多种变形机制,包括波浪形位错、异常严重扭曲的位错带、分层堆叠断层和变形孪晶,这些都与合金的出色机械性能有关。这些见解为高强度和韧性合金的设计,尤其是在极端环境中的应用提供了战略指导。
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