Journal of Asian Ceramic Societies | 卷:4 |
Development of quartz particulate reinforced AA6063 aluminum matrix composites via friction stir processing | |
I. Dinaharan1  L. John Baruch2  S. Chandra Rao Madane3  S. Joyson Abraham4  | |
[1] Department of Mechanical Engineering Science, University of Johannesburg, Auckland Park Kingsway Campus, Johannesburg 2006, South Africa; | |
[2] Department of Mechanical Engineering, Madanapalle Institute of Technology and Science, Madanapalle 517325, Andhra Pradesh, India; | |
[3] Department of Mechanical Engineering, Prasanna College of Engineering and Technology, Belthangady 574214, Karnataka, India; | |
[4] Department of Mechanical Engineering, St. Peter's University, Chennai 600054, Tamil Nadu, India; | |
关键词: Metal matrix composites; Friction stir processing; Microstructure; Wear; | |
DOI : 10.1016/j.jascer.2016.08.001 | |
来源: DOAJ |
【 摘 要 】
Friction stir processing (FSP) has been accepted as a potential method to produce aluminum matrix composites (AMCs) without the drawbacks of liquid metallurgy methods. The present work focuses on the development of AMCs reinforced with quartz (SiO2) particles using FSP. Grooves with various dimensions were machined on AA6063 plates and compacted with quartz particles. A single pass FSP was carried out using a combination of optimized process parameters. The volume fraction of quartz particles in the AMCs was varied from 0 to 18 vol.% in steps of 6 vol.%. The developed AA6063/Quartz AMCs were characterized using optical, scanning and transmission electron microscopy. The quartz particles were distributed uniformly in the aluminum matrix irrespective of the location within the stir zone. The grains of the AA6063 were extensively refined by the combination of thermomechanical effect of FSP and the pinning effect of quartz particles. The dispersion of the quartz particles improved the microhardness and wear resistance of the AMCs. The role of quartz particles on the worn surface and wear debris is reported.
【 授权许可】
Unknown