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The wear of PVD coated elements in oscillation motion at high temperature

  • Remigiusz Michalczewski
    ,
  • MAREK Kalbarczyk
    ,
  • Zbigniew Słomka
    ,
  • Sylwia Sowa
    ,
  • Maciej Łuszcz
    ,
  • Edyta Osuch-Słomka
  • Instytut Technologii Eksploatacji,Department of Tribology
    ,
  • Tribology Department
    ,
  • Instytut Technologii Eksploatacji - Panstwowy Instytut Badawczy, Radom
    ,
  • Institute for Sustainable Technologies
    ,
  • Radom University of Technology
    ,
Research Output:
Contribution to journal
Article
Peer-review

Abstract

This paper provides an overview on the recent development of coatings and modified surfaces to minimize wear between
contact surfaces in high-temperature working environments. The aim of this work was to study the wear of various types of coatings
deposited by the PVD (Physical Vapour Deposition) method on TiB2/Ti composites manufactured by Spark Plasma Sintering (SPS).
The following coatings were investigated: TiN-TiCrN-AlCrN-AlCrTiN/Si3N4-multilayer, TiN-TiCrN-AlCrN-AlCrTiN/Si3N4-
AlCrTiSiN+grad ON, TiN-TiCrN-AlCrN-AlTiCrN and as a reference, a commercially available AlCrN-based coating – all intended
to fulfil complex requirements of high-temperature working conditions. The wear tests were performed by means of a ball-on-disc
SRV friction and wear tester using reciprocating motion of the Si3N4 ball sliding against a coated disc in a wide range of temperatures
from room temperature up to 900 °C. The results confirmed that high-temperature wear resistance depends on the proper design of
the coatings.

Publication Information

Output type

Research Output:
Contribution to journal
Article
Peer-review

Original language

English

Article number

2021, 70, 4, 500–507

Pages from-to (Number of pages)

Pages 500 (507 pages)

Journal (Volume, Issue Number)

Proceedings of the Estonian Academy of Sciences

Publication milestones

  • Published - 01/10/2021

Publication status

Published - 01/10/2021

ISSN

1736-6046

Access to documents

Funding Details

Project HOTselflub was supported by the National Science Centre, Poland, under the M-ERA.NET 2, which received funding from the European Union’s Horizon 2020 research and innovation programme, under the grant agreement No. 685451, and by the Estonian Research Council grant M-ERA.Net “HOTselflub” MOBERA18 N.20097582-CA. The publication costs of this article were covered by the Estonian Academy of Sciences and Tallinn University of Technology.