Enhanced Wear Behavior of a Stainless Steel Coating Deposited on a Medium-Carbon Low-Alloy Steel Using Ultrasonic Impact Treatment

Author:

Li Li12,Guo Shudong3,Jia Lu1,Zhang Li4,Li Jiangang5,Wang Xigang1,Zhang Nannan6ORCID,Gan Hongyan7,Guo Yanhui8,Zhao Suyan910

Affiliation:

1. Department of Mechanical Engineering, Taiyuan Institute of Technology, Taiyuan 030008, China

2. State Key Laboratory of Structural Analysis for Industrial Equipment, Department of Engineering Mechanics, Dalian University of Technology, Dalian 116024, China

3. Taian Quality and Technical Inspection and Testing Institute, Taian 271000, China

4. Shanxi Culture Relics Bureau, Taiyuan 030000, China

5. China New Energy Development (Zhejiang) Co., Ltd., Hangzhou 310000, China

6. Department of Material Science and Engineering, Shenyang University of Technology, Shenyang 110870, China

7. College of Mechanical Engineering, Shenyang Polytechnic College, Shenyang 110045, China

8. Nuclear and Radiation Safety Center, Beijing 100082, China

9. Natural Resource Asset Capital Research Center, Hebei GEO University, Shijiazhuang 050031, China

10. School of Management, Hebei GEO University, Shijiazhuang 050031, China

Abstract

This study aims to explore the effects of ultrasonic impact parameters on the surface modification of a stainless steel coating deposited on a medium-carbon low-alloy steel using argon arc surfacing welding. Ultrasonic impact treatment (UIT), at three different vibration strike numbers (40,000 times/(mm2), 57,600 times/(mm2), and 75,000 times/(mm2)) marked UIT–1, UIT–2, and UIT–3, respectively, was carried out to modify the surface structure and properties of the stainless steel coating. The surface morphological and structural features, phase compositions, grain size, topography, micro-mechanical properties, as well as the wear resistance of the coating before and after UIT with different impact parameters were experimentally investigated. The results of optical microscopy (OM), scanning electron microscopy (SEM), electron backscatter diffraction (EBSD), and X-ray diffraction (XRD) analyses revealed that the grain refinement accompanied by the formation of the strain-induced α′–martensite occurred on the UIT-treated coating surface. With the increase in the vibration strike number, the surface grain size and roughness decreased, while the α′–martensite content increased. Micro-hardness after UIT was increased by about 19% (UIT–1), 39% (UIT–2), and 57% (UIT–3), and the corresponding wear rate obtained was decreased by 39%, 72%, and 85%, respectively. Significant improvements in wear resistance were achieved using UIT. However, an excessive vibration strike number on the per unit area (/mm2) might result in unwanted micro-cracks and delamination on the treated surface, deteriorating the performance of the coating. These findings validate that UIT parameters (such as the vibration strike number on per unit area) are of great importance to bringing about improvements in wear performance, and UIT is found to have a high potential in modifying the surface characteristics and optimizing the mechanical performances of the deposited coating for a wide range of potential applications.

Funder

Excellent Talent Introduction of Shanxi Provincial Researcher Grants Program

Talent Introduction Program of Taiyuan Institute of Technology

Publisher

MDPI AG

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces

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