Numerical simulation and experimental validation of the cladding material distribution of hybrid semi-finished products produced by deposition welding and cross-wedge rolling

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dc.identifier.uri http://dx.doi.org/10.15488/10564
dc.identifier.uri https://www.repo.uni-hannover.de/handle/123456789/10641
dc.contributor.author Kruse, Jens
dc.contributor.author Mildebrath, Maximilian
dc.contributor.author Budde, Laura
dc.contributor.author Coors, Timm
dc.contributor.author Faqiri, Mohamad Yusuf
dc.contributor.author Barroi, Alexander
dc.contributor.author Stonis, Malte
dc.contributor.author Hassel, Thomas
dc.contributor.author Pape, Florian
dc.contributor.author Lammers, Marius
dc.contributor.author Hermsdorf, Jörg
dc.contributor.author Kaierle, Stefan
dc.contributor.author Overmeyer, Ludger
dc.contributor.author Poll, Gerhard
dc.date.accessioned 2021-03-17T13:48:24Z
dc.date.available 2021-03-17T13:48:24Z
dc.date.issued 2020
dc.identifier.citation Kruse, J.; Mildebrath, M.; Budde, L.; Coors, T.; Faqiri, M.Y. et al.: Numerical simulation and experimental validation of the cladding material distribution of hybrid semi-finished products produced by deposition welding and cross-wedge rolling. In: Metals 10 (2020), Nr. 10, 1336. DOI: https://doi.org/10.3390/met10101336
dc.description.abstract The service life of rolling contacts is dependent on many factors. The choice of materials in particular has a major influence on when, for example, a ball bearing may fail. Within an exemplary process chain for the production of hybrid high-performance components through tailored forming, hybrid solid components made of at least two different steel alloys are investigated. The aim is to create parts that have improved properties compared to monolithic parts of the same geometry. In order to achieve this, several materials are joined prior to a forming operation. In this work, hybrid shafts created by either plasma (PTA) or laser metal deposition (LMD-W) welding are formed via cross-wedge rolling (CWR) to investigate the resulting thickness of the material deposited in the area of the bearing seat. Additionally, finite element analysis (FEA) simulations of the CWR process are compared with experimental CWR results to validate the coating thickness estimation done via simulation. This allows for more accurate predictions of the cladding material geometry after CWR, and the desired welding seam geometry can be selected by calculating the cladding thickness via CWR simulation. © 2020 by the authors. Licensee MDPI, Basel, Switzerland. eng
dc.language.iso eng
dc.publisher Basel : MDPI AG
dc.relation.ispartofseries Metals 10 (2020), Nr. 10
dc.rights CC BY 4.0 Unported
dc.rights.uri https://creativecommons.org/licenses/by/4.0/
dc.subject Coating eng
dc.subject Cross-wedge rolling eng
dc.subject Forming eng
dc.subject LMD-W eng
dc.subject PTA eng
dc.subject Rolling eng
dc.subject Tailored forming eng
dc.subject Welding eng
dc.subject.ddc 530 | Physik ger
dc.title Numerical simulation and experimental validation of the cladding material distribution of hybrid semi-finished products produced by deposition welding and cross-wedge rolling
dc.type Article
dc.type Text
dc.relation.essn 2075-4701
dc.relation.doi https://doi.org/10.3390/met10101336
dc.bibliographicCitation.issue 10
dc.bibliographicCitation.volume 10
dc.bibliographicCitation.firstPage 1336
dc.description.version publishedVersion
tib.accessRights frei zug�nglich


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