Surface Modification of a Cold Gas Dynamic Spray-Deposited Titanium Coating on Aluminum Alloy by using Friction-Stir Processing

被引:0
作者
F. Khodabakhshi
B. Marzbanrad
L. H. Shah
H. Jahed
A. P. Gerlich
机构
[1] University of Tehran,School of Metallurgical and Materials Engineering, College of Engineering
[2] University of Waterloo,Department of Mechanical and Mechatronics Engineering
[3] Universiti Malaysia Pahang,Faculty of Mechanical and Manufacturing Engineering
来源
Journal of Thermal Spray Technology | 2019年 / 28卷
关键词
AA5083 alloy substrate; cold spray; friction-stir processing; hardness; microstructure; Ti-coating;
D O I
暂无
中图分类号
学科分类号
摘要
In this research, the parameters of the cold spray process were initially assessed for deposition of a pure titanium coating layer with the thickness in the range of 800-850 µm on an AA5083 alloy substrate. Thereafter, to enhance the structural integrity of Ti-coating layer and decrease the coating porosity, friction-stir processing was employed as a post-modification technique by using a flat cylindrical tungsten carbide tool. The plunge depth of the friction-stir tool (in the range of 0.3-0.5 mm) was found to significantly affect the densification of the porous titanium coating layer. Optical microscopy, field emission-scanning electron microscopy, electron backscattering diffraction, transmission electron microscopy analysis and indentation Vickers micro-hardness testing were conducted on the thickness cross-sections of cold-sprayed coatings to characterize the microstructural features and mechanical properties before and after friction-stir modification performed using two different plunge depths. Furthermore, residual stress profiles on the surface were determined by using x-ray diffraction analysis technique. Significant grain refinement, from an initial cold-sprayed coating grain size of less than 25 µm to grain sizes < 1 µm, was observed across the thickness section of modified samples with a gradient profile from the coating surface toward the interface depending on the plunge depth. After friction-stir processing, the hardness of a thin layer close to the surface of coating increased up to seven times higher as compared to the cold-sprayed material.
引用
收藏
页码:1185 / 1198
页数:13
相关论文
共 118 条
[1]  
Moridi A(2014)Cold Spray Coating: Review of Material Systems and Future Perspectives Surf. Eng. 30 369-395
[2]  
Hassani-Gangaraj SM(2016)Cold Spraying: A Materials Perspective Acta Mater. 116 382-407
[3]  
Guagliano M(2009)From Particle Acceleration to Impact and Bonding in Cold Spraying J. Therm. Spray Technol. 18 794-10070
[4]  
Dao M(2003)Microstructural and Macroscopic Properties of Cold Sprayed Copper Coatings J. Appl. Phys. 93 10064-102
[5]  
Assadi H(2018)On the Evolution of Substrate’s Residual Stress During Cold Spray Process: A Parametric Study Mater. Des. 138 90-794
[6]  
Kreye H(2012)In Situ Observation Of Microstrain Relief in Cold-Sprayed Bulk Copper During Thermal Annealing Scr. Mater. 67 791-135
[7]  
Gärtner F(2016)Influence of Annealing on Mechanical and Electrochemical Properties of Cold Sprayed Niobium Coatings Surf. Coat. Technol. 296 124-310
[8]  
Klassen T(2003)Friction Stir Processing: A Novel Technique for Fabrication of Surface Composite Mater. Sci. Eng. A 341 307-78
[9]  
Schmidt T(2005)Friction Stir Welding and Processing Mater. Sci. Eng. R 50 1-1023
[10]  
Assadi H(2008)Recent Advances in Friction-Stir Welding: Process, Weldment Structure and Properties Prog. Mater Sci. 53 980-354