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Corrosion and Wear Resistance of Ultrasonic Vibration-Assisted Laser Cladded Fe-Based Crystal/Amorphous Composite Coatings

36 Pages Posted: 14 May 2024 Publication Status: Published

See all articles by Lin Chen

Lin Chen

Harbin Engineering University

Haolun Song

Harbin Engineering University

Chunhuan Guo

Harbin Engineering University

Shubang Wang

Harbin Engineering University

Fengchun Jiang

Harbin Engineering University

Mingying Xiao

Yantai Engineering and Technology

Zhuhui Qiao

Chinese Academy of Sciences (CAS) - Lanzhou Institute of Chemical Physics

Abstract

The ultrasonic vibration (UV) is applied during the laser cladding process of Fe88.83Si6.21B2.51Cr2.45 (wt. %) amorphous powders. The microstructure evolution and properties of the Fe-based crystal/amorphous composite coatings with and without UV were investigated in detail. The findings reveal a significant decrease of 55.8% in the average grain size within the UV coating, accompanied by a 35.9% reduction in the length of columnar grains at the interface, which is primarily attributed to the acoustic streaming and cavitation effects of ultrasound. The average microhardness value of coatings rises from 659 [[EQUATION]]33 HV0.2 to 873 [[EQUATION]]48 HV0.2. Meanwhile, the coatings with UV exhibit outstanding wear resistance, with a 38.2% reduction in wear rate compared to normal coatings. The corrosion mechanism of the coatings is pitting corrosion and the corroded surface of the coating with UV displays a relatively smaller pitting area. The enhancement mechanism for properties by UV can be the cooperative effect of the fine-grain strengthening and the amorphous phase strengthening.

Keywords: Laser cladding, Ultrasonic vibration (UV), Microstructure, Wear resistance, Corrosion resistance

Suggested Citation

Chen, Lin and Song, Haolun and Guo, Chunhuan and Wang, Shubang and Jiang, Fengchun and Xiao, Mingying and Qiao, Zhuhui, Corrosion and Wear Resistance of Ultrasonic Vibration-Assisted Laser Cladded Fe-Based Crystal/Amorphous Composite Coatings. Available at SSRN: https://ssrn.com/abstract=4824772 or http://dx.doi.org/10.2139/ssrn.4824772

Lin Chen

Harbin Engineering University ( email )

Haolun Song

Harbin Engineering University ( email )

Chunhuan Guo (Contact Author)

Harbin Engineering University ( email )

Shubang Wang

Harbin Engineering University ( email )

Harbin, 150001
China

Fengchun Jiang

Harbin Engineering University ( email )

Harbin, 150001
China

Mingying Xiao

Yantai Engineering and Technology ( email )

Zhuhui Qiao

Chinese Academy of Sciences (CAS) - Lanzhou Institute of Chemical Physics ( email )

Lanzhou, 730000
China

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