TY - CONF A1 - Wandtke, Karsten A1 - Schröpfer, Dirk A1 - Kannengießer, Thomas A1 - Scharf-Wildenhain, Ronny A1 - Hälsig, Andre A1 - Kromm, Arne A1 - Hensel, J. T1 - Fertigungsbedingte Beanspruchungen und Kaltrisssicherheit in generativ gefertigten Bauteilen aus hochfesten Feinkornbaustählen N2 - Additive Fertigungsverfahren wie das Direct Energy Deposition-Arc (DED-Arc) oder Wire Arc Additive Manufacturing (WAAM) ermöglichen die effiziente Herstellung gewichtsoptimierter, endkonturnaher Bauteile im modernen Stahlbau. Steigerungen der Effizienz können durch den Einsatz hochfester Stähle erreicht werden, insbesondere durch Verringerung von Wandstärken und Bauteilgewicht sowie signifikante Einsparung von Kosten, Zeit und Ressourcen. DED-Arc Schweißzusatzwerkstoffe sind bereits auf dem Markt verfügbar, allerdings fehlen Richtlinien und quantitative Kenntnisse über die schweißbedingte Beanspruchung während der Fertigung und im Betrieb, welche den industriellen Einsatz stark limitieren. In einem gemeinsamen Projekt der BAM und der Technischen Universität Chemnitz wurden die wesentlichen Einflüsse und komplexen Wechselwirkungen von Werkstoff, Fertigungsverfahren, Konstruktion und Bearbeitungsschritten auf die Eigenspannungen untersucht. Ziel war es, den stahlverarbeitenden Anwendern, insbesondere KMU, eine risssichere und beanspruchungsgerechte Herstellung und Modifizierung von Bauteilen und Halbzeugen aus hochfesten Feinkornbaustahl unter Verwendung MSG-basierter generativer Verfahren zu ermöglichen. T2 - DVS Innovationstage 2024 CY - Düsseldorf, Germany DA - 10.04.2024 KW - Feinkornbaustähle KW - Additive Fertigung KW - Kaltrisssicherheit KW - Direct Energy Deposition-Arc (DED-Arc), Wire Arc Additive Manufacturing (WAAM) PY - 2024 AN - OPUS4-61934 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Hensel, J. T1 - Influence of build-up height and heat input on distortion and residual stresses in additive repair and modification of multi-material composites using DED-Arc N2 - In hybrid additive manufacturing, components or semi-finished products manufactured by conventional primary forming are enhanced or modified by additive manufactured structures. The integration of additive manufacturing steps into existing production routes opens up significant economic and technical potential. However, systematic investigations focusing on the critical transition area between the specific properties of the substrate (like high-strength) and the additively manufactured component, made of specific filler material, are still lacking. Residual stresses heighten the risk of cold cracking, excessive distortion and a reduction in yield stress. This is particularly evident in sensitive transition areas, resulting from a complex interaction among the material used, process conditions, and component design. This risk can be minimized by an optimized layer structure in combination with suitable process parameters. The focus of the present study was to determine the influence of deposition strategy on t T2 - International Materials Science and Engineering Congress - MSE 2024 CY - Darmstadt, Germany DA - 02.04.2024 KW - DED-Arc KW - Residual stress KW - Heat control PY - 2024 AN - OPUS4-61929 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Hensel, J. T1 - Influence of the WAAM process and design aspects on residual stresses in high-strength structural steels N2 - High-strength fine-grain structural steels have great potential for weight optimization of many modern engineering structures. Efficient manufacturing can be achieved here above all by Wire Arc Additive Manufacturing (WAAM). First commercial high-strength welding consumables for WAAM are already available. However, due to a lack of knowledge and guidelines for the industry regarding welding residual stresses and component safety in manufacturing and operation, their application is still severely limited. Residual stresses play a crucial role here, as the sensitive microstructure of high-strength steels carries a high risk of cold cracking. For this reason, process- and material-related influences, as well as the design aspects on residual stress formation and the risk of cold cracking, are being investigated in a recent project (FOSTA-P1380/IGF21162BG). This high strength of the WAAM welding consumables is adjusted via a martensitic phase transformation. The volume expansion associated with martensite formation has a significant influence on residual stress evolution. However, this has not yet been investigated in relation to the processing of high-strength steels by WAAM. The aim of this work is to establish a WAAM cold crack test and easy-to-apply processing recommendations that will allow economical, expedient, and crack-resistant fabrication of high-strength steels, especially for SME. This paper focuses on the analysis of the effects of welding heat control and design of WAAM components on cooling conditions, microstructure, mechanical-technological properties and residual stresses. For this purpose, geometrically defined specimens (hollow cuboids) are welded fully automatically with a special, high-strength WAAM solid wire (yield strength >790 MPa). The heat control and specimen dimensions are varied within a statistical experimental design. The weld heat control is adjusted in such a way that the t8/5 cooling times are ensured within the recommended processing range (approx. 5–20 s). For this purpose, additional thermo-physical forming simulations using a dilatometer allowed the complex heat cycles to be reproduced and the resulting ultimate tensile strength of the weld metal to be determined. The WAAM welding of complex geometries with varying welding heat control and geometric factors or wall thicknesses not only has an effect on the cooling conditions, cooling times and microstructure, but also has a significant influence on the structural restraint conditions during welding. Hence, the welding experiments show significant effects of specimen scaling and heat input on the welding residual stresses, which may be detrimental regarding component properties and crack-critical tensile residual stresses. These complex interactions are analyzed within this investigation. T2 - 75th IIW Annual Assembly CY - Tokyo, Japan DA - 17.07.2022 KW - WAAM KW - Residual Stresses KW - High-strength Steels KW - Cold cracking safety KW - Heat control KW - Wind energy PY - 2022 AN - OPUS4-56713 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -