首页|Fabrication and wear property of NiCo coated ZrO2–Al2O3 ceramic particles reinforced high manganese steel-based composites

Fabrication and wear property of NiCo coated ZrO2–Al2O3 ceramic particles reinforced high manganese steel-based composites

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In this work, the nickel-cobalt layer was used as a medium to improve the interfacial bonding of ZrO2–Al2O3 particles (ZTAP) reinforced high manganese steel-based composites. The nickel-cobalt layers on the surface of ZTAP ceramics are prepared by electroless deposition in the sulfate solutions. The formation mechanism, morphology evolution and elemental composition of the NiCo coating were investigated by varying the plating temperature, plating time and sulfate concentration. The NiCo grain size increases, and the coating thickness increases and then decreases with CoSiO4 concentration. A dense and uniform nickel-cobalt coating could be obtained after plating with 25 g/L CoSiO4 at 80 °C for 10 h. NiCo coated ZTAP ceramics reinforced high manganese steel matrix composites were fabricated using non-pressure casting infiltration. The results showed that NiCo improves the bonding property of composites causing a tighter and cleaner interface compared with severe defects of cracks, delaminations and holes on the interface of composites without NiCo coating. The effects of NiCo coating on tribological properties of the composites were clarified by the three-body abrasive wear. The superior interfacial bonding of composites assisted with NiCo coating exhibited excellent abrasive wear resistance, which increases by 230%.

Electroless platingHigh manganese steelNickel-cobalt coatingWettabilityZTA ceramic

Li S.、Yoong Tok A.I.、Shi J.、Liu F.、Zhao S.、Li C.、Li Y.、Li B.、Gao Y.、Goei R.

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School of Materials Science and Engineering Nanyang Technological University

School of Materials Science and Engineering Xi'an University of Technology

College of Materials Science and Engineering Inner Mongolia University of Technology

Guangxi Great Wall Machineries

State Key Laboratory for Mechanical Behavior of Materials School of Materials Science and Engineering Xi'an Jiaotong University

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2022

Wear

Wear

EISCI
ISSN:0043-1648
年,卷(期):2022.492/493
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