Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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Materials Map under construction

The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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1.080 Topics available

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693.932 PEOPLE
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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (32/32 displayed)

  • 2021Improving and monitoring the magnetic pulse welding process between dissimilar metals ; Verbessern und Beobachten des Magnetpulsschweißprozesses von verschiedenartigen Metallen12citations
  • 2021Interface Formation during Collision Welding of Aluminumcitations
  • 2021Influence of copper interlayers on the magnetic pulse welding process between aluminum and steel9citations
  • 2020Interface formation during collision welding of aluminum17citations
  • 2020Improving and Monitoring the Magnetic Pulse Welding Process between Dissimilar Metalscitations
  • 2020Particle Ejection by Jetting and Related Effects in Impact Welding Processes17citations
  • 2020Joining dissimilar thin-walled tubes by magnetic pulse welding36citations
  • 2019Einfluss der Wandstärke auf das Umformverhalten und das Schweißergebnis beim Magnetpulsschweißen ; Effect of the wall thickness on the forming behavior and welding result during magnetic pulse welding3citations
  • 2019Experimental study on the magnetic pulse welding process of large aluminum tubes on steel rods7citations
  • 2019Thermal effects in dissimilar magnetic pulse welding ; Thermische Effekte beim Magnetpulsschweißen von Mischverbindungen17citations
  • 2019Magnetic pulse welding of tubular parts ; Magnetpulsschweißen von Rohren2citations
  • 2019Effect of the forming behavior on the impact flash during magnetic pulse welding of tubescitations
  • 2019Thermal effects in dissimilar magnetic pulse welding17citations
  • 2018Influence of the flyer kinetics on magnetic pulse welding of tubes51citations
  • 2018Effects of reactive interlayers in magnetic pulse weldingcitations
  • 2018Parameter identification for magnetic pulse welding applications11citations
  • 2018Effects of reactive interlayers in magnetic pulse welding ; Einfluss von reaktiven Zwischenschichten beim Magnetpulsschweißencitations
  • 2017Measurement of collision conditions in magnetic pulse welding processes ; Messung der Kollisionsbedingungen beim Magnetpulsschweißen18citations
  • 2017Magnetic pulse welding of tubes: ensuring the stability of the inner diametercitations
  • 2017Magnetic pulse welding: solutions for process monitoring within pulsed magnetic fieldscitations
  • 2017Targeted weld seam formation and energy reduction at magnetic pulse welding (MPW) ; Gezielte Nahteinstellung und Energiereduktion beim Magnetpulsschweißen5citations
  • 2017Neue Möglichkeiten zur Prozessüberwachung und Effizienzsteigerung beim Magnetpulsschweißencitations
  • 2016Measurement and analysis technologies for magnetic pulse welding: Established methods and new strategies28citations
  • 2016Magnetic pulse welding of dissimilar metals in tube-to-tube configurationcitations
  • 2016Magnetic pulse welding of tubes: Ensuring the stability of the inner diameter ; Magnetpulsschweißen von Rohren: Sicherstellung eines stabilen Innendurchmesserscitations
  • 2016Effects of Surface Coatings on the Joint Formation During Magnetic Pulse Welding in Tube-to-Cylinder Configurationcitations
  • 2016Magnetic pulse welding: Solutions for process monitoring within pulsed magnetic fields ; Magnetpulsschweißen: Lösungen für die Prozessüberwachung in gepulsten Magnetfelderncitations
  • 2016Influence of the wall thicknesses on the joint quality during magnetic pulse welding in tube-to-tube configurationcitations
  • 2016Magnetic pulse welding: Joining within microseconds - high strength forever ; Magnetpulsschweißen: Fügen in Mikrosekunden - Hohe Festigkeit für immercitations
  • 2016Influence of selected coatings on the welding result during Magnetic Pulse Welding (MPW) ; Einfluss ausgewählter Bauteilbeschichtungen auf das Fügeergebnis beim elektromagnetischen Pulsfügencitations
  • 2016Workpiece positioning during magnetic pulse welding of aluminum-steel jointscitations
  • 2015LBW of steel-aluminum corner joints generated by selected laser material meltingcitations

Places of action

Chart of shared publication
Wagner, Markus
3 / 8 shared
Schulze, Sebastian
22 / 29 shared
Zimmermann, Martina
3 / 162 shared
Schettler, Sebastian
4 / 8 shared
Beyer, Eckhard
29 / 84 shared
Leyens, Christoph
5 / 430 shared
Standfuß, Jens
3 / 19 shared
Groche, Peter
3 / 25 shared
Schumacher, Eugen
3 / 3 shared
Böhme, Marcus
3 / 9 shared
Lueg-Althoff, Jörn
27 / 38 shared
Niessen, Benedikt
3 / 3 shared
Wagner, Martin Franz-Xaver
3 / 31 shared
Tekkaya, A. Erman
15 / 34 shared
Böhm, Stefan
3 / 22 shared
Kroll, Lothar
1 / 273 shared
Nestler, Daisy Julia
1 / 58 shared
Roder, Kristina
1 / 3 shared
Tekkaya, Ae
13 / 822 shared
Gies, Soeren
22 / 64 shared
Hahn, Marlon
7 / 59 shared
Dittrich, Steffen
1 / 1 shared
Überschaer, F.
1 / 1 shared
Schulze, S.
1 / 22 shared
Beyer, E.
1 / 58 shared
Beyer, Ecckhard
1 / 1 shared
Goebel, Gunther
1 / 5 shared
Göbel, Gunther
1 / 8 shared
Schultze, Sebastian
1 / 1 shared
Schilling, B.
1 / 3 shared
Kirchhoff, Gunter
1 / 3 shared
Weddeling, Christian
1 / 27 shared
Lorenz, Amanda Leigh
1 / 1 shared
Göbel, Günther
1 / 1 shared
Brenner, Berndt
1 / 13 shared
Jahn, Axel
1 / 7 shared
Chart of publication period
2021
2020
2019
2018
2017
2016
2015

Co-Authors (by relevance)

  • Wagner, Markus
  • Schulze, Sebastian
  • Zimmermann, Martina
  • Schettler, Sebastian
  • Beyer, Eckhard
  • Leyens, Christoph
  • Standfuß, Jens
  • Groche, Peter
  • Schumacher, Eugen
  • Böhme, Marcus
  • Lueg-Althoff, Jörn
  • Niessen, Benedikt
  • Wagner, Martin Franz-Xaver
  • Tekkaya, A. Erman
  • Böhm, Stefan
  • Kroll, Lothar
  • Nestler, Daisy Julia
  • Roder, Kristina
  • Tekkaya, Ae
  • Gies, Soeren
  • Hahn, Marlon
  • Dittrich, Steffen
  • Überschaer, F.
  • Schulze, S.
  • Beyer, E.
  • Beyer, Ecckhard
  • Goebel, Gunther
  • Göbel, Gunther
  • Schultze, Sebastian
  • Schilling, B.
  • Kirchhoff, Gunter
  • Weddeling, Christian
  • Lorenz, Amanda Leigh
  • Göbel, Günther
  • Brenner, Berndt
  • Jahn, Axel
OrganizationsLocationPeople

article

Joining dissimilar thin-walled tubes by magnetic pulse welding

  • Gies, Soeren
  • Schulze, Sebastian
  • Bellmann, Jörg
  • Lueg-Althoff, Jörn
  • Hahn, Marlon
  • Beyer, Eckhard
  • Tekkaya, A. Erman
Abstract

Art. 116562 ; Welding dissimilar metal tubes attracts interest for a wide range of automotive, aeronautical, and plant engineering applications as well as other consumables. Hybrid driveshafts or structural elements can meet mechanical requirements at a reduced weight. However, joining materials with strongly different thermo-physical properties is a challenge for conventional fusion welding processes. In Magnetic Pulse Welding (MPW), the weld formation is based on the high-velocity collision between the joining partners, without additional heat input. This allows for the fabrication of sound ""cold"" welds. MPW of tubular parts is usually realized by the radial electromagnetic compression of the outer ""flyer"" part and the subsequent impact on the inner ""parent"" part. This impact represents a harsh loading for the parent, which therefore is usually designed as a thick-walled or solid part to avoid damage or unwanted deformations. To further increase the lightweight potential, the objective of the present manuscript is the comprehensive analysis of MPW with thin-walled parent parts. Experimental and analytical investigations are presented, which enable to reduce the parent thickness without affecting the joint strength. The approaches comprise the observation of the impact and deformation behavior by inline laser-based measurement technology as well as the development of adequate, re-usable mandrels to support the parent parts. The focus is on aluminum flyer parts, which are welded to steel and copper parent parts. Critical values for the parent wall thickness are deduced and recommendations for the process design of MPW with thin-walled tubes are given. ; 279

Topics
  • impedance spectroscopy
  • aluminium
  • strength
  • steel
  • copper
  • joining