Microstructure and Properties of Nickel-Based Gradient Coatings Prepared Using Cold Spraying Combined with Laser Cladding Methods

Author:

Liu Sainan1,Sun Yangyang1,Zhai Pengyuan2,Fan Pengyu2,Zhang Yongtong3,Li Muyang4,Fang Jianxiao4,Wu Ruilin4,Cai Zhenyang4

Affiliation:

1. School of Minerals Processing and Bioengineering, Central South University, Changsha 410083, China

2. New Technology Promotion Institute of China Ordnance Industries, Beijing 100089, China

3. Henan Jianghe Machinery Co., Ltd., Pingdingshan 467000, China

4. School of Materials Science and Engineering, Central South University, Changsha 410083, China

Abstract

A cold spray–laser cladding composite gradient coating (CLGC) was successfully formed on a Cu substrate. In comparison with traditional laser cladding gradient coatings (LGC), cold spraying the pre-set Ni-Cu alloy’s intermediate transition layer not only mitigates the negative impacts due to the high reflectivity of the copper substrate but also helps to minimize the difference in the coefficients of thermal expansion (CTE) between the substrate and coating. This reduces the overall crack sensitivity and improves the cladding quality of the coating. Besides this, the uniform distribution of hard phases in CLGC, such as Ni11Si12 and Mo5Si3, greatly increases its microhardness compared to the Cu substrate, thus resulting in the value of 478.8 HV0.5 being approximately 8 times that of the Cu substrate. The friction coefficient of CLGC is lowered compared to both the Cu substrate and LGC with respective values of 0.28, 0.54, and 0.43, and its wear rate is only one-third of the Cu substrate’s. These results suggest CLGC has excellent anti-wear properties. In addition, the wear mechanism was determined from the microscopic morphology and element distribution and was found to be oxidative and abrasive. This approach combines cold spraying and laser cladding to form a nickel-based gradient coating on a Cu substrate without cracks, holes, or other faults, thus improving the wear resistance of the Cu substrate and improving its usability.

Funder

National Defense Basic Scientific Research Program of China

Science and Technology Innovation Program for the High-tech Sector of Hunan Province

Publisher

MDPI AG

Subject

General Materials Science

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