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research article

Wear behaviour of novel copper alloy as an alternative to copper-beryllium

Rouxel, Baptiste  
•
Mischler, Stefano  
•
Loge, Roland  
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April 23, 2023
Wear

Copper beryllium age hardenable alloys (Cu-Be) are widely used and appreciated for combining exceptional mechanical and electrical properties. However, the toxicity of these alloys pushes the scientific community to develop alternative alloys. Cu-Ni-Sn alloys are already used in aeronautics and the oil industry to replace Cu-Be when good tribological behaviour is required. Recent studies showed that Cu-Ti alloys, age hardenable, have a higher yield stress and elongation than Cu-Ni-Sn alloys and can approach the mechanical resistance of Cu-Be. In this research work, the wear mechanisms governing the tribological behaviour of a new copper alloy (containing alloying elements such as titanium, nickel or tin) as an alternative to the beryllium containing copper alloys were investigated. Tribological tests under dry conditions were carried out by sliding an alumina ball against three different copper alloys disks applying different loads and during a different number of cycles. Wear volumes were quantified by confocal microscopy while wear morphology and microstructural changes at the surface and subsurface were analysed by SEM and FIB cross-sections. Several wear mechanisms were identified including plastic deformation followed by the build-up of a third body. Friction transitions were measured during sliding as a consequence of the third body formation. The chemical and mechanical properties of the third body were material dependent and determined the wear behaviour of the different copper alloys.

  • Details
  • Metrics
Type
research article
DOI
10.1016/j.wear.2023.204817
Web of Science ID

WOS:000988667900001

Author(s)
Rouxel, Baptiste  
Mischler, Stefano  
Loge, Roland  
Munoz, Anna Igual  
Date Issued

2023-04-23

Publisher

ELSEVIER SCIENCE SA

Published in
Wear
Volume

524

Article Number

204817

Subjects

Engineering, Mechanical

•

Materials Science, Multidisciplinary

•

Engineering

•

Materials Science

•

friction transients

•

copper alloys

•

third body

•

dry sliding

•

precipitation

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMTM  
SCI-STI-SM  
Available on Infoscience
June 5, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/197931
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