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Surface oxide development on aluminum alloy 6063 during heat treatment

Rullik, Lisa LU ; Evertsson, Jonas LU ; Johansson, Niclas LU ; Bertram, Florian LU ; Nilsson, Jan Olov ; Zakharov, Alexei A. LU ; Mikkelsen, Anders LU and Lundgren, Edvin LU (2019) In Surface and Interface Analysis 51(12). p.1214-1224
Abstract

We report on the influence of oxygen partial pressure for the development of surface oxides covering the industrial aluminum alloy standard 6063 at temperatures ranging from room temperature to 500° C. Using an array of synchrotron-based techniques, we followed the change in oxide thickness, chemical composition, and the lateral distribution of alloying elements. The impact of the oxygen chemical potential is most visible at high temperatures where the oxide composition changes from mostly Al based to mostly Mg based. This is in stark contrast to the ultra-high vacuum (UHV) conditions where only a partial compositional transition is observed. The microscopy data demonstrate that in the UHV case, Mg segregation onto the surface occurs... (More)

We report on the influence of oxygen partial pressure for the development of surface oxides covering the industrial aluminum alloy standard 6063 at temperatures ranging from room temperature to 500° C. Using an array of synchrotron-based techniques, we followed the change in oxide thickness, chemical composition, and the lateral distribution of alloying elements. The impact of the oxygen chemical potential is most visible at high temperatures where the oxide composition changes from mostly Al based to mostly Mg based. This is in stark contrast to the ultra-high vacuum (UHV) conditions where only a partial compositional transition is observed. The microscopy data demonstrate that in the UHV case, Mg segregation onto the surface occurs firstly at grain boundaries at 300° C and secondly at sites over the entire surface at 400° C. Further, the initial oxide thickness is 45 Å, as determined by XPS and XRR, decreases in all observed cases after heating to 300° C. At higher temperatures, however, the oxygen partial pressure highly influences the resulting oxide thickness as evident from our X-ray reflectivity data.

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author
; ; ; ; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
AA 6063, aluminum silicon magnesium alloy, heat treatment, surface oxide, XPEEM, XPS, XRR
in
Surface and Interface Analysis
volume
51
issue
12
pages
1214 - 1224
publisher
Wiley-Blackwell
external identifiers
  • scopus:85061776526
ISSN
0142-2421
DOI
10.1002/sia.6616
language
English
LU publication?
yes
id
23b84601-52e1-46ce-a0de-8a74121077bb
date added to LUP
2019-03-04 09:59:27
date last changed
2023-12-03 03:10:23
@article{23b84601-52e1-46ce-a0de-8a74121077bb,
  abstract     = {{<p>We report on the influence of oxygen partial pressure for the development of surface oxides covering the industrial aluminum alloy standard 6063 at temperatures ranging from room temperature to 500° C. Using an array of synchrotron-based techniques, we followed the change in oxide thickness, chemical composition, and the lateral distribution of alloying elements. The impact of the oxygen chemical potential is most visible at high temperatures where the oxide composition changes from mostly Al based to mostly Mg based. This is in stark contrast to the ultra-high vacuum (UHV) conditions where only a partial compositional transition is observed. The microscopy data demonstrate that in the UHV case, Mg segregation onto the surface occurs firstly at grain boundaries at 300° C and secondly at sites over the entire surface at 400° C. Further, the initial oxide thickness is 45 Å, as determined by XPS and XRR, decreases in all observed cases after heating to 300° C. At higher temperatures, however, the oxygen partial pressure highly influences the resulting oxide thickness as evident from our X-ray reflectivity data.</p>}},
  author       = {{Rullik, Lisa and Evertsson, Jonas and Johansson, Niclas and Bertram, Florian and Nilsson, Jan Olov and Zakharov, Alexei A. and Mikkelsen, Anders and Lundgren, Edvin}},
  issn         = {{0142-2421}},
  keywords     = {{AA 6063; aluminum silicon magnesium alloy; heat treatment; surface oxide; XPEEM; XPS; XRR}},
  language     = {{eng}},
  month        = {{02}},
  number       = {{12}},
  pages        = {{1214--1224}},
  publisher    = {{Wiley-Blackwell}},
  series       = {{Surface and Interface Analysis}},
  title        = {{Surface oxide development on aluminum alloy 6063 during heat treatment}},
  url          = {{http://dx.doi.org/10.1002/sia.6616}},
  doi          = {{10.1002/sia.6616}},
  volume       = {{51}},
  year         = {{2019}},
}