镍对CoCrFeNixAl0.15Ti0.1高熵合金组织、力学性能和耐蚀性的影响

W. Qi, Yitian Su, X. Yang, Guannan Zha, Y. Zhao, Ya Zhang, Wenrui Wang
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引用次数: 0

摘要

本文研究了Ni对cocrfenixal0.15 - ti0.1高熵合金组织、力学性能和耐蚀性的影响。结果表明,在合金中适当添加Ni元素有利于减小合金的平均晶粒尺寸。在细晶强化下,合金的屈服强度和抗拉强度也有所提高,而本研究体系的延展性并未受到明显影响。在耐蚀性方面,CoCrFeNixAl0.15Ti0.1高熵合金在开路电位下形成致密的钝化膜,具有良好的耐蚀性。但随着合金中Ni含量的过量加入,由于Cr元素相对含量的相对降低,合金在氯离子环境中的抗点蚀性能会下降。该研究也为设计和开发综合性能优异的新型沉淀强化cocrfeni基高熵合金提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Nickel on the Microstructure, Mechanical properties and Corrosion Resistance of CoCrFeNixAl0.15Ti0.1 High Entropy Alloy
The present work investigates the effect of Ni on the microstructure, mechanical properties, and corrosion resistance of CoCrFeNixAl0.15Ti0.1 high-entropy alloys. It was found that the appropriate addition of Ni element in the alloy is beneficial to reduce the average grain size of the alloy. The yield strength and tensile strength of the alloy under fine-grain strengthening have also been increased, while the ductility of the system in this study has not been significantly affected. In terms of corrosion resistance, CoCrFeNixAl0.15Ti0.1 high-entropy alloys form a dense passive film at open circuit potential, possessing good corrosion resistance. However, with the excessive addition of Ni content in the alloy, the pitting corrosion resistance of the alloy in the environment of chloride ions will decrease due to the relative decrease of the relative content of Cr element. This work also can provide guidances for the design and development of new precipitation-strengthened CoCrFeNi-based high-entropy alloys with excellent comprehensive properties.
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