Microstructural and wear characterizations of Ultra-Dispersed Diamond (UDD) reinforced Cu-15 wt.% Ti composites fabricated via mechanical alloying and sintering

H. Kaftelen*, M. L. Ovecoglu

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

2 Citations (Scopus)

Abstract

In this study, effects of ultra-dispersed nanodiamond content on the microstructure and wear properties of Cu-15 wt.% Ti matrix composite were investigated. Samples were prepared by mechanical alloying and sintering at 890°C for 2 h under H2 gas atmosphere. Microstructural changes and dry sliding wear characterizations of sintered samples were investigated by a field emission scanning electron microscope (FESEM), and their phase characteristics were carried out using X-ray diffractometer (XRD). Electron microscopy investigations revealed that a good bonding between nanodiamond particles and Cu matrix could not be maintained due to the formation of free copper layers and the presence of high oxygen amount at the interface. The results taken from worn surfaces showed that high content of nanodiamond (10 wt.%) with oxide particles led to low wear resistance due to poor bonding between Cu- 15 wt.% Ti matrix and nanodiamond particles which were pulled out during dry sliding wear.

Original languageEnglish
Pages (from-to)149-159
Number of pages11
JournalKovove Materialy
Volume55
Issue number3
DOIs
Publication statusPublished - 2017

Bibliographical note

Publisher Copyright:
© 2017 Institute of Materials and Machine Mechanics, Slovak Academy of Sciences. All rights reserved.

Funding

The authors would like to acknowledge the State Planning Organization (DPT) of Turkey for funding the project entitled “Development of Al-Cu Based Metal Matrix Composites via Powder Metallurgy Techniques” with the project number 90189.

FundersFunder number
Al-Cu Based Metal Matrix Composites via Powder Metallurgy Techniques90189
DPT
Devlet Planlama Örgütü

    Keywords

    • Microstructure
    • Ultra-dispersed nanodiamond powders
    • Wear resistance

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