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Effect of Annealing Temperature on Microstructure and Properties of a High-entropy Alloy Fe35Ni30Cr20Al10Nb5 |
LI Yunfei1,2,3, WANG Jinhe1,3, ZHANG Long1,3, LI Zhengkun1, FU Huameng1,3( ), ZHU Zhengwang1,3, LI Hong1, WANG Aimin1,3, ZHANG Haifeng1,3 |
1.CAS Key Laboratory of Nuclear Materials and Safety Assessment, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China 2.School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China 3.Shi -Changxu Innovation Center for Advanced Materials, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China |
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Cite this article:
LI Yunfei, WANG Jinhe, ZHANG Long, LI Zhengkun, FU Huameng, ZHU Zhengwang, LI Hong, WANG Aimin, ZHANG Haifeng. Effect of Annealing Temperature on Microstructure and Properties of a High-entropy Alloy Fe35Ni30Cr20Al10Nb5. Chinese Journal of Materials Research, 2024, 38(4): 241-247.
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Abstract The effect of annealing-temperature on the microstructure and properties of the low-melting point high-entropy alloy Fe35Ni30Cr20Al10Nb5 (molar ratio) were systematically investigated. The results show that with the increasing annealing-temperature, the volume fraction of Fe-Cr-rich fcc phase gradually decreases, while the volume fraction of Laves phase and B2-NiAl phase gradually increases for the as-cast alloy. The quasi-static compression test results show that the as-cast alloy has good compressive plastic deformation ability, and the yield strength of the alloy increases and then decreases as the annealing-temperature increases. The decrease in compression yield strength with the rising annealing-temperature is mainly attributed to the decomposition of the fcc phase at higher temperatures. The electrochemical test results show that the corrosion resistance of the alloy increases monotonically with the annealing-temperature, and the free-corrosion potential of the alloy annealed at 900oC is -72.02 mV.
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Received: 08 May 2023
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Fund: National Key Research and Development Program of China(2021YFA0716303);LingChuang Research Project of China National Nuclear Corporation;Chinese Science Academy 0 to 1 Project |
Corresponding Authors:
FU Huameng, Tel: 13654219196, E-mail: hmfu@imr.ac.cn
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