Surface treatment of additively manufactured high-alloy austenitic steel parts with the aim of prolonging the fatigue life
Authors
Kristina Navickaite
Technische Universität Bergakademie Freiberg, Faculty of Mechanical, Process and Energy Engineering, Institute for Machine Elements, Design and Manufacturing, Agricolastr.1, 09599, Freiberg, Germany
https://orcid.org/0000-0002-9830-2060 (unauthenticated)
Stefan Langenhan
Technische Universität Bergakademie Freiberg, Faculty of Material Science and Technology, Institute of Materials Engineering, Gustav-Zeuner-Straße 5, 09599, Freiberg, Germany
https://orcid.org/0009-0003-2952-0202 (unauthenticated)
Anastasiia Sherstneva
Technische Universität Bergakademie Freiberg, Faculty of Material Science and Technology, Institute of Iron and Steel Technology, Leipziger Straße 34, 09599, Freiberg, Germany
https://orcid.org/0009-0004-9369-0967 (unauthenticated)
Jenny Köckritz
Technische Universität Bergakademie Freiberg, Faculty of Mechanical, Process and Energy Engineering, Institute for Machine Elements, Design and Manufacturing, Agricolastr.1, 09599, Freiberg, Germany
https://orcid.org/0009-0000-6042-5367 (unauthenticated)
Klaus Nestler
Beckmann Institute for Technology Development e.V., Annabergerstr. 73, 09111, Chemnitz, Germany
Michael Penzel
Plamotion GmbH, Halsbrücker Str. 34, 09599 Freiberg, Germany
Anja Weidner
Technische Universität Bergakademie Freiberg, Faculty of Material Science and Technology, Institute of Materials Engineering, Gustav-Zeuner-Straße 5, 09599, Freiberg, Germany
https://orcid.org/0000-0002-6432-902X (unauthenticated)
Marco Wendler
Technische Universität Bergakademie Freiberg, Faculty of Material Science and Technology, Institute of Iron and Steel Technology, Leipziger Straße 34, 09599, Freiberg, Germany
https://orcid.org/0000-0002-4689-6530 (unauthenticated)
Robert Szlosarek
Technische Universität Bergakademie Freiberg, Faculty of Mechanical, Process and Energy Engineering, Institute for Machine Elements, Design and Manufacturing, Agricolastr.1, 09599, Freiberg, Germany
https://orcid.org/0000-0001-5885-2415 (unauthenticated)
Horst Biermann
Technische Universität Bergakademie Freiberg, Faculty of Material Science and Technology, Institute of Materials Engineering, Gustav-Zeuner-Straße 5, 09599, Freiberg, Germany
https://orcid.org/0000-0002-6036-0687 (unauthenticated)
Olena Volkova
Technische Universität Bergakademie Freiberg, Faculty of Material Science and Technology, Institute of Iron and Steel Technology, Leipziger Straße 34, 09599, Freiberg, Germany
https://orcid.org/0000-0001-8647-3885 (unauthenticated)
Henning Zeidler
Technische Universität Bergakademie Freiberg, Faculty of Mechanical, Process and Energy Engineering, Institute for Machine Elements, Design and Manufacturing, Agricolastr.1, 09599, Freiberg, Germany
https://orcid.org/0000-0003-0800-9678 (unauthenticated)
Matthias Kröger
Technische Universität Bergakademie Freiberg, Faculty of Mechanical, Process and Energy Engineering, Institute for Machine Elements, Design and Manufacturing, Agricolastr.1, 09599, Freiberg, Germany
https://orcid.org/0000-0002-4132-8323 (unauthenticated)
high-alloy austenitic steel; vacuum induction gas atomisation; electron beam melting; plasma electrolytic polishing; topology optimisation; fatigue life
Abstract
In this article preliminary results of an interdisciplinary study on high-alloy austenitic steel with medium manganese content X2CrMnNi16-7-4.5 are presented. The specimens were manufactured using the powder-based electron beam melting technology (PBF-EB/M). The steel powder for the PBF-EB/M process was gas-atomised using a vacuum induction-melting gas atomisation (VIGA-1B) unit. For improving the surface integrity of the manufactured specimens, they were plasma electrolytic polished (PEP) in a combination with particle blasting. The bath-PEP and standing-wave-PEP processes were realised. The PBF-EB/M process parameters were also optimised in order to reduce the depth of surface notches of the specimens in as-built conditions as well as minimise the building defects, e.g. lack of fusion. The initial results show that while PBF-EB/M process is well suited for processing X2CrMnNi16-7-4.5 steel. The resulting surface quality requires significant post-treatment efforts for improving its integrity. The efficiency of the used surface enhancement techniques is evaluated in terms of the thickness of the removed material, δ, as well as the material removal rate MRR and by qualitatively evaluating the resulting surface condition. It is demonstrated that standing-wave-PEP holds the promise for being the most effective surface treatment for PBF-EB/M parts. The optimised parameters for manufacturing and post-treatment processes will be applied for fabricating a bottom bracket of a cargo bike that is topology optimised for prolonged fatigue life.
Surface treatment of additively manufactured high-alloy austenitic steel parts with the aim of prolonging the fatigue life. (2024). RTe Journal. https://doi.org/10.58134/fh-aachen-rte_2024_005