Effect of Cold-Spray Parameters on Surface Roughness, Thickness and Adhesion of Copper-Based Composite Coating on Aluminum Alloy 6061 T6 Substrate

Author:

Shao Ling123,Xue Na13,Li Weiwei13,Liu Song4,Tu Zhibiao13,Chen Yingwei2,Zhang Jitang13,Dai Sheng13,Liu Qijie2,Shi Xinxing1,Wang Tianle1,Chen Mengliang5,Huang Yingqi2,Xu Feilong1,Zhu Liu13ORCID

Affiliation:

1. Zhejiang Provincial Key Laboratory for Cutting Tools, Taizhou University, Taizhou 318000, China

2. Taizhou Key Laboratory of Medical Devices and Advanced Materials, Research Institute of Zhejiang University-Taizhou, Taizhou 318000, China

3. Taizhou Clean Carbon Technology Company Limited, Taizhou 318020, China

4. Zhejiang Shuoshi Machinery Company Limited, Shaoxing 312073, China

5. School of Materials Science and Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China

Abstract

A solid-state cold-spray technique was employed for depositing the copper-coated graphite reinforced copper-based composite coatings on aluminum alloy 6061 T6 substrate under different process parameters. The optimum process parameters of the cold-sprayed coatings were predicted in terms of surface roughness, thickness and adhesion. The surface roughness was measured using a 3D profilometer, the thickness and element constitution were detected by an optical microscope and scanning electron microscope furnished with an energy-dispersive spectral analyzer and the adhesion was detected by the scratch test method. The microstructures of the deposited coatings were also observed by a scanning electron microscope. The results show that when the coating is not oxidized and dense, the copper-coated graphite reinforced copper-based composite coating at 800 °C, 5.5 MPa, possesses the lowest surface roughness, the maximum thickness and the highest adhesion among the cold-sprayed coatings. In addition, the surface roughness, thickness and adhesion of the deposited coatings are all linear with particle velocity.

Funder

National Natural Science Foundation of China

Zhejiang Province Key Research and Development Plan Project

General Scientific Research Project of Zhejiang Provincial Education Department

Zhejiang Public Welfare Technology Application Research Project

Science and Technology Plan Project of Taizhou

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

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