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The effects of substrate dilution on the microstructure and wear resistance of PTA Cu-Al-Fe aluminium bronze coatings

The effects of substrate dilution on the microstructure and wear resistance of PTA Cu-Al-Fe aluminium bronze coatings
The effects of substrate dilution on the microstructure and wear resistance of PTA Cu-Al-Fe aluminium bronze coatings
Cu-Al-Fe aluminium bronze alloys are good candidates for precious tools and forming dies due to their high wear resistance, good sliding properties and low tendency for adhesion to ferrous metals. Plasma transferred arc (PTA) is an effective process for deposition of such robust coatings by enhancing the bond between the bronze coating and steel substrate. However, the microstructure and wear characteristics of these coatings are strongly influenced by the diffusion of substrate elements (mostly iron) to the interface. In the present study, the effects of substrate dilution on the microstructure and wear behaviour of Cu-Al-Fe alloy deposited by PTA on medium carbon steel substrate were investigated. The results show that the deposition current controls the melting temperature and iron dilution which result in the formation of Cu3Al martensitic β1' phase in a low dilution and the ordered β1 phase in high dilution. The wear behaviour of the coating is dominated by failure of the matrix phase. Low dilution coating with martensitic phase exhibits the highest wear resistance. On high diluted Fe rich coating, pile up of dislocation on the intermetallic K phase leads to surface cracks and delamination of the coating resulting in a high wear rate.
Cu-Al-Fe, Bronze coatings, Plasma transferred arc, Dilution, Sliding wear
0043-1648
1-9
Kucita, P.
1e79ed8f-b10e-4ea1-8748-c9f61d2d4b05
Wang, S.
8a390e2d-6552-4c7c-a88f-25bf9d6986a6
Li, W.S.
189f14ed-9e2c-4202-82ba-6d24321b3304
Cook, R.B.
06f8322d-81be-4f82-9326-19e55541c78f
Starink, M.J.
fe61a323-4e0c-49c7-91f0-4450e1ec1e51
Kucita, P.
1e79ed8f-b10e-4ea1-8748-c9f61d2d4b05
Wang, S.
8a390e2d-6552-4c7c-a88f-25bf9d6986a6
Li, W.S.
189f14ed-9e2c-4202-82ba-6d24321b3304
Cook, R.B.
06f8322d-81be-4f82-9326-19e55541c78f
Starink, M.J.
fe61a323-4e0c-49c7-91f0-4450e1ec1e51

Kucita, P., Wang, S., Li, W.S., Cook, R.B. and Starink, M.J. (2019) The effects of substrate dilution on the microstructure and wear resistance of PTA Cu-Al-Fe aluminium bronze coatings. Wear, 440–441, 1-9, [203102]. (doi:10.1016/j.wear.2019.203102).

Record type: Article

Abstract

Cu-Al-Fe aluminium bronze alloys are good candidates for precious tools and forming dies due to their high wear resistance, good sliding properties and low tendency for adhesion to ferrous metals. Plasma transferred arc (PTA) is an effective process for deposition of such robust coatings by enhancing the bond between the bronze coating and steel substrate. However, the microstructure and wear characteristics of these coatings are strongly influenced by the diffusion of substrate elements (mostly iron) to the interface. In the present study, the effects of substrate dilution on the microstructure and wear behaviour of Cu-Al-Fe alloy deposited by PTA on medium carbon steel substrate were investigated. The results show that the deposition current controls the melting temperature and iron dilution which result in the formation of Cu3Al martensitic β1' phase in a low dilution and the ordered β1 phase in high dilution. The wear behaviour of the coating is dominated by failure of the matrix phase. Low dilution coating with martensitic phase exhibits the highest wear resistance. On high diluted Fe rich coating, pile up of dislocation on the intermetallic K phase leads to surface cracks and delamination of the coating resulting in a high wear rate.

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Accepted/In Press date: 21 October 2019
e-pub ahead of print date: 22 October 2019
Published date: 15 December 2019
Keywords: Cu-Al-Fe, Bronze coatings, Plasma transferred arc, Dilution, Sliding wear

Identifiers

Local EPrints ID: 435227
URI: http://eprints.soton.ac.uk/id/eprint/435227
ISSN: 0043-1648
PURE UUID: f3869ead-ed0c-48ad-b21d-32bacec548df
ORCID for R.B. Cook: ORCID iD orcid.org/0000-0002-2468-5820

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Date deposited: 28 Oct 2019 17:30
Last modified: 17 Mar 2024 03:18

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Contributors

Author: P. Kucita
Author: S. Wang
Author: W.S. Li
Author: R.B. Cook ORCID iD
Author: M.J. Starink

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