Welding characteristics and microstructure of an industrially processed Fe-Mn-Al-Ni shape memory alloy joined by tungsten inert gas welding

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OriginalspracheEnglisch
Seiten (von - bis)2207-2216
Seitenumfang10
FachzeitschriftWelding in the world
Jahrgang66
Ausgabenummer11
Frühes Online-Datum16 Aug. 2022
PublikationsstatusVeröffentlicht - Nov. 2022

Abstract

Iron-based shape memory alloys have recently attracted increased attention due to their low material costs combined with good workability and high transformation strains. They show excellent welding properties, as shown by several studies and compared to non-iron-based shape memory alloys, and are potential candidate materials for large-scale application as damping elements in building structures. Since subsequent heat treatment is only possible to a limited extent for large-scale components, it is necessary to minimize the effects of processing and welding operations on the shape memory properties. Therefore, a suitable microstructure must be established in the heat-affected zone and the fusion zone during the welding process. Thus, industrially processed polycrystalline Fe-Mn-Al-Ni was joined by tungsten inert gas welding with matching filler material. The phases formed upon welding with different parameters were investigated using optical microscopy, scanning electron microscopy and X-ray diffraction. Shielding gas composition as well as mean arc linear energy have a huge impact on the γ-phase precipitation. Intercrystalline cracking can be supressed by increasing the γ content. Further, the α-fraction and grain size in the fusion zone can be controlled by the welding parameters. Ultimately, a hardness value of the fusion zone equal to heat-treated material was achieved which suggests that the fusion zone may be able to transfer the stress required for martensitic transformation.

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Welding characteristics and microstructure of an industrially processed Fe-Mn-Al-Ni shape memory alloy joined by tungsten inert gas welding. / Viebranz, Vincent Fabian; Hassel, Thomas; Niendorf, Thomas et al.
in: Welding in the world, Jahrgang 66, Nr. 11, 11.2022, S. 2207-2216.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Viebranz VF, Hassel T, Niendorf T, Maier HJ. Welding characteristics and microstructure of an industrially processed Fe-Mn-Al-Ni shape memory alloy joined by tungsten inert gas welding. Welding in the world. 2022 Nov;66(11):2207-2216. Epub 2022 Aug 16. doi: 10.1007/s40194-022-01364-8
Viebranz, Vincent Fabian ; Hassel, Thomas ; Niendorf, Thomas et al. / Welding characteristics and microstructure of an industrially processed Fe-Mn-Al-Ni shape memory alloy joined by tungsten inert gas welding. in: Welding in the world. 2022 ; Jahrgang 66, Nr. 11. S. 2207-2216.
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abstract = "Iron-based shape memory alloys have recently attracted increased attention due to their low material costs combined with good workability and high transformation strains. They show excellent welding properties, as shown by several studies and compared to non-iron-based shape memory alloys, and are potential candidate materials for large-scale application as damping elements in building structures. Since subsequent heat treatment is only possible to a limited extent for large-scale components, it is necessary to minimize the effects of processing and welding operations on the shape memory properties. Therefore, a suitable microstructure must be established in the heat-affected zone and the fusion zone during the welding process. Thus, industrially processed polycrystalline Fe-Mn-Al-Ni was joined by tungsten inert gas welding with matching filler material. The phases formed upon welding with different parameters were investigated using optical microscopy, scanning electron microscopy and X-ray diffraction. Shielding gas composition as well as mean arc linear energy have a huge impact on the γ-phase precipitation. Intercrystalline cracking can be supressed by increasing the γ content. Further, the α-fraction and grain size in the fusion zone can be controlled by the welding parameters. Ultimately, a hardness value of the fusion zone equal to heat-treated material was achieved which suggests that the fusion zone may be able to transfer the stress required for martensitic transformation.",
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AU - Maier, Hans Jürgen

N1 - Funding Information: The material was processed by thyssenkrupp Steel Europe AG (Duisburg, Germany). Funding Information: Open Access funding enabled and organized by Projekt DEAL. Financial support by Deutsche Forschungsgemeinschaft under project number 401738767 is gratefully acknowledged.

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