<div class="csl-bib-body">
<div class="csl-entry">Klein, T., Zhang, D., Staufer, E., Boll, T., Schneider-Broeskamp, C., Edtmaier, C., Schmitz-Niederau, M., Horky, J., Qiu, D., & Easton, M. (2023). Phase transformation pathways in a Ti-5.9Cu alloy modified with Fe and Al. <i>Journal of Materials Research and Technology</i>, <i>27</i>, 4978–4985. https://doi.org/10.1016/j.jmrt.2023.11.014</div>
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dc.identifier.issn
2238-7854
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/190152
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dc.description.abstract
Titanium alloys have been gaining importance in various industries due to their advantageous combination of strength, low density, excellent corrosion/oxidation resistance, and superior mechanical properties at elevated temperatures. Recently, eutectoid Ti–Cu alloys have been explored as promising candidates for advanced processes. This work investigates the effects of Fe and Al on a Ti-5.9Cu alloy using multi-scale characterization techniques. While Fe acts as a β-stabilizing element (despite being a sluggish eutectoid former), Al acts as an α-stabilizer. This work focuses on the effects of combined addition of these elements, studied in different heat treatment conditions. The results show that a fine, equiaxed microstructure is obtained in the binary Ti-5.9Cu alloy, whereas the addition of 2 wt% Fe, or 2 wt% Fe combined with 2 wt% Al to the Ti-5.9Cu alloy deteriorates the effect of grain refinement and coarse, columnar grains result and a small amount of β-phase is retained. Further, the microstructure resulting from the eutectoid decomposition is altered dramatically from a lamellar pearlitic in the binary alloy to a lath-like α-phase with diverse decomposition products in the ternary and quaternary alloys accompanied by increasing hardness values. Evaluation of the α misorientation suggests that a substantial amount of non-Burgers α is present in the Ti-Cu alloy in contrast to the results of the ternary and quaternary alloys. The observed Cu-rich intermetallic compound was identified as Ti2Cu phase with off-stoichiometric composition. Results obtained explain how adding either Fe or Fe and Al leads to substantial hardening.
en
dc.description.sponsorship
FFG - Österr. Forschungsförderungs- gesellschaft mbH
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dc.language.iso
en
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dc.publisher
Elsevier
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dc.relation.ispartof
Journal of Materials Research and Technology
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dc.subject
Titanium alloys
en
dc.subject
Microstructure formation
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dc.subject
Precipitation
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dc.subject
Intermetallic phases
en
dc.subject
Atom probe tomography
en
dc.title
Phase transformation pathways in a Ti-5.9Cu alloy modified with Fe and Al
en
dc.type
Article
en
dc.type
Artikel
de
dc.contributor.affiliation
Austrian Institute of Technology, Austria
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dc.contributor.affiliation
RMIT University, Australia
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dc.contributor.affiliation
Karlsruhe Institute of Technology, Germany
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dc.contributor.affiliation
Austrian Institute of Technology, Austria
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dc.contributor.affiliation
Voestalpine (Germany), Germany
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dc.contributor.affiliation
RHP Technology (Austria), Austria
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dc.contributor.affiliation
RMIT University, Australia
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dc.contributor.affiliation
RMIT University, Australia
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dc.description.startpage
4978
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dc.description.endpage
4985
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dc.relation.grantno
886889
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dc.type.category
Original Research Article
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tuw.container.volume
27
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tuw.journal.peerreviewed
true
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tuw.peerreviewed
true
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wb.publication.intCoWork
International Co-publication
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tuw.project.title
Neuartige hochfeste Titanlegierungen für Luftfahrtanwendungen