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Effects of Mo Addition on Microstructure and Corrosion Resistance of CrCoNiFeMo High-Entropy Alloys via Directed Energy Deposition.

作者信息

Kim Han-Eol, Kim Jae-Hyun, Jeong Ho-In, Cho Young-Tae, Salem Osama, Jung Dong-Won, Lee Choon-Man

机构信息

Department of Smart Manufacturing Engineering, Changwon National University, 20 Changwondaehak-ro, Uichang-gu, Changwon-si 51140, Republic of Korea.

Mechatronics Research Center, Changwon National University, Changwon 51140, Republic of Korea.

出版信息

Micromachines (Basel). 2024 Sep 27;15(10):1196. doi: 10.3390/mi15101196.

Abstract

Highly entropy alloys (HEAs) are novel materials that have great potential for application in aerospace and marine engineering due to their superior mechanical properties and benefits over conventional materials. NiCrCoFe, also referred to as Ni-based HEA, has exceptional low-temperature strength and microstructural stability. However, HEAs have limited corrosion resistance in some environments, such as a 3.5 wt% sodium chloride (NaCl) solution. Adding corrosion-resistant elements such as molybdenum (Mo) to HEAs is expected to increase their corrosion resistance in a variety of corrosive environments. Metal additive manufacturing reduces production times compared to casting and eliminates shrinkage issues, making it ideal for producing homogeneous HEA. This study used directed energy deposition (DED) to create CrCoNiFeMo (x = 0, 5, 10%) HEAs. Tensile strength and potentiodynamic polarization tests were used to assess the materials' mechanical properties and corrosion resistance. The mechanical tests revealed that adding 5% Mo increased yield strength (YS) by 20.1% and ultimate tensile strength (UTS) by 9.5% when compared to 0% Mo. Adding 10% Mo led to a 32.5% increase in YS and a 20.4% increase in UTS. Potentiodynamic polarization tests were used to assess corrosion resistance in a 3.5-weight percent NaCl solution. The results showed that adding Mo significantly increased initial corrosion resistance. The alloy with 5% Mo had a higher corrosion potential (E) and a lower current density (I) than the alloy with 0% Mo, indicating improved initial corrosion resistance. The alloy containing 10% Mo had the highest corrosion potential and the lowest current density, indicating the slowest corrosion rate and the best initial corrosion resistance. Finally, CrCoNiFeMo (x = 0, 5, 10%) HEAs produced by DED exhibited excellent mechanical properties and corrosion resistance, which can be attributed to the presence of Mo.

摘要
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8e5/11509674/4fb4e31f88a4/micromachines-15-01196-g001.jpg

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