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Nikolai Zaepernik (Chief Business Officer, Managing Director - EOS GmbH), Mr Stefan Seidel (CTO, Pankl Racing Systems AG)03/11/2021, 11:15Plenary Talk
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Mr Ralf Carlström (President - EPMA)03/11/2021, 11:45Plenary Talk
European Powder Metallurgy Association (EPMA) is a non profitable organization promoting metal powder technologies. It represents the powder metallurgy (PM) industry within Europe and Internationally, and develop the future of PM. This is achieved through driving research projects, offer extensive basic and advanced training, numerous seminars and arranging the main yearly PM conference in...
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Mr Mohsen Seifi (Director, Global Additive Manufacturing Programs, ASTM International)03/11/2021, 12:15Plenary Talk
As the Additive Manufacturing (AM) industry moves towards series industrial production, the need for standards covering all aspects of the technology value chain becomes ever more prevalent. While standards and specifications for the various aspects of the AM materials and process chain continue to evolve, many such standards still need to be matured or are under consideration/development...
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Ian Stroud (POSTECH), Prof. Nader Asnafi (Örebro University, School of Science & Technology), Prof. Suk-Hwan Suh (POSTECH, Research Center for Smart Factory)03/11/2021, 12:45Plenary Talk
This plenary presentation is focused on the coming manufacturing systems for metal additive manufacturing controlled cyber-physically. Cyber-Physically controlled Smart Additive Manufacturing system (CPSAM) is a smart additive manufacturing system for realizing Industry 4.0/Smart Manufacturing on the shop floor via cyber-physical control scheme. CPSAM is capable of
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1) autonomous abnormality... -
Dr Mihaela Albu (ZFE Graz)03/11/2021, 14:30
Complex metallic structures additively manufactured via laser powder bed fusion (L-PBF) is an already established technique in this rapidly growing industry branch. However, the development of alloys for field-specific applications and the quality and functionality of the final parts strongly depends on the micro- and nanostructure morphology, crystallography and chemical...
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Mr Yannik Wilkens (SMS group GmbH)03/11/2021, 14:30
A powder atomization plant for the production of high-quality metal powder for Additive Manufacturing (AM) was developed at SMS group. Low cost and simultaneously highest quality powders are key enablers for AM on its way to the next revolution in manufacturing. SMS strives for highest availability, productivity and yield of the powder atomization process through implementation of data-driven...
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Mr Michał Zalewski03/11/2021, 14:50
Metal atomization is a multifaceted process as being represented by different technologies that allow for achieving input material for 3d metal printers, opening the door to new possibilities. The focus area of the 3D LAB company together with their own ATO technology of atomization using ultrasonic system and melting electric arc stand for the key to make the door widely-open while offering a...
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Mr Maxwell Moyle (University of New South Wales)03/11/2021, 14:50
Additive manufacturing (AM) generates complex multi-scale microstructures in metallic components, differing from conventional microstructures in terms of grain structure, cell substructure, elemental distribution, and residual stress. It is therefore important to analyse AM microstructures across multiple length scales using correlative microscopy techniques to establish comprehensive...
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Mr Siegfried Arneitz (Institute of Materials Science, Joining and Forming, Graz University of Technology)03/11/2021, 15:10
In recent years, the method of additive manufacturing has become more and more important in the production of magnetic materials due to higher demands for miniaturization and complex- shaped magnet parts. With the method of Laser beam- powder bed fusion (LB-PBF), an in- situ alloying process for the additive manufacturing of the Fe-Cr-Co system has been developed. With this novel method that...
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Dr Christopher Hulme-Smith (KTH Royal Institute of Technology)03/11/2021, 15:10
It is now widely accepted that there is an urgent need for a test to determine if a powder can be spread in to thin layers, as it must be for powder bed additive manufacturing. There is not yet any accepted or standardised test for this behaviour. Several techniques have been proposed in the last few years, most based on automated film applicators. A layer can be formed using similar settings...
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Mr Jan Platl (Montanuniversität Leoben - Department of Materials Science)03/11/2021, 15:30
Laser powder bed fusion (LPBF) facilitates near-net-shape fabrication of geometrically complex tools. This leads to significantly reduced post-processing effort compared to conventional manufacturing, for example in the case of hobbing cutters. However, due to the high carbon equivalent of high-speed steels, cracking of the brittle carbon martensite is very likely during LPBF. In contrast,...
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Mr Etienne Bonnaud (SWERIM)03/11/2021, 15:30
Additive manufacturing is an attractive and now well-accepted technique. Nevertheless, to reach its full potential, the method needs, among other issues, to cope with distortion and residual stress. High, local and quickly moving heat input leads to high temperature gradients that give rise to residual stresses during solidification and cooling. Due to residual stresses, components can crack...
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Dr Martin Dopler (Metalpine GmbH)03/11/2021, 16:20
The provision of the metal raw material (due to a low product yield) and inert gas consumption are the main energy consumers in powder production for additive processes. In standard gas atomization processes, any effort to produce finer powder (to increase product yield) is achieved by increasing inert gas consumption.
In order to decrease the carbon footprint of additively manufactured...
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Ms Sabine Bodner (Montanuniversität Leoben)03/11/2021, 16:20
Additively manufactured (AM) samples exhibit a pronounced texture formation along the build direction (i.e. along z-axis) that predefines an anisotropic mechanical behavior of the final bulk materials. Consequently, different mechanical properties can be measured in tensile tests along and perpendicular to the build direction, depending on the initial orientation of the sample in the powder...
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Dr Juergen Cornelius (INTECO melting and casting technologies GmbH)03/11/2021, 16:40
A continuous growth for high quality metal powders in Additive Manufacturing applications forced INTECO to develop a novel vacuum inert gas atomization system, as standard atomization equipment has not seen major developments or improvements to fulfill the demanding tasks from the industry. The new system is characterized by special features which are supposed to overcome disadvantages of...
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Mr Lucas Robatto (Instituto Tecnológico de Aeronáutica)03/11/2021, 16:40
Due to the raster heat inputs, steep temperature gradients and rapid cooling, the selective laser melting (SLM) process generally induces high residual stresses heterogeneity across the fabricated parts. In the case of gears, such variations on the teeth flank may have a negative effect on the fatigue behavior. This study analyzes the influence of residual stresses heterogeneity induced by SLM...
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Mr Siegfried Baehr (Linde GmbH / Technical University of Munich)03/11/2021, 17:00
This study aims to investigate the influence of different process gases on the processing of a Zr-blended aluminum 7075 alloy by laser-based powder bed fusion. Two common gases for this process, argon and nitrogen, are compared. The objective is to study the effect of the gases on crack formation in the bulk material with respect to the possible formation of nitrides. In order to assess this...
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Mr Timothée Delacroix (CEA)03/11/2021, 17:00
In Laser Powder Bed Fusion (LPBF), a significant amount of metallic powder is not melted by the laser beam. Costs and material yield strongly depend on the ability to reuse metal powder efficiently. However, some of the unfused powder is exposed to high temperatures during the manufacturing process in an imperfectly controlled atmosphere. Therefore, there is a need to study and understand...
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Prof. Peter Mayr (Head of the chair Materials Engineering of Additive Manufacturing, TU München)04/11/2021, 09:00Plenary Talk
Within this contribution, the transfer of knowledge from conventional fusion and deposition welding using electric arc processes to advanced direct energy deposition (DED) of multi-material structures in additive manufacturing will be presented. Gas metal arc and plasma welding have been used for decades to produce either joints or metallic deposits with desired properties. Also creating...
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65. Additive manufacturing of implants directly in the clinic: chances and challenges - top or flop?Prof. Ute Schäfer (Medical University Graz)04/11/2021, 09:30Plenary Talk
3D-printing of implants, tools or prostheses in a clinical setting is a highly challenging field in additive
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manufacturing. It is crucial to guarantee patients as well as attending physicians at any time the highest
possible quality of material as well as printing process and this quality of course has to be reproducible
and on the highest possible level.
These requirements in the highly... -
45. Investigation of the Impact of Powder Shape on Spreading Dense Layers Using the Spreading TesterMarco Mitterlehner (voestalpine BÖHLER Edelstahl GmbH & Co KG)04/11/2021, 10:30
In laser powder bed fusion processes, spreading as dense and fully covered powder layers as possible is of crucial importance for good processability of powders. Poorly covered layers or layers with unappropriated features in it such as for instance elongated, powderless craters in the direction of spreading might result in insufficient quality of the printed parts. The reason for this could...
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Prof. Amir Horr (AIT, Austrian Institute of Technology)04/11/2021, 10:30
Different aspects of quality assessments for Additive Manufacturing (AM) parts are founded on complicated phenomena governed by intrinsic multi-physical and multi-phase interactions. To investigate the dynamic and fatigue performances of AM parts, variety of techniques including new hybrid physical-data driven scheme have been investigated. Hybrid modelling is one of the new trends in analyses...
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Dr Beatrix Elsner (Simufact Engineering GmbH)04/11/2021, 10:50
The rise of additive manufacturing has enabled new degrees of freedom in terms of design and functionality. In this context, this contribution addresses the design and characterization of structural unit cells that are intended as building blocks of highly porous lattice structures with tailored properties. While typical lattice structures are often composed of gyroid or diamond lattices, this...
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36. Zinc-Magnesium Alloys for Bioresorbable Medical Implants manufactured by Laser Powder Bed FusionMr Maximilian Voshage (RWTH Aachen University - DAP)04/11/2021, 10:50
Bioresorbable materials for use in medical implants are attracting interest in current research projects. Recent studies show promising results for Zinc-Magnesium (ZnMgx) alloys as biodegradable materials due to the combination of degradation rate and high strength resulting from grain refinement due to magnesium addition. By using Additive Manufacturing (AM), complex scaffold-like structures...
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Dr Erich Neubauer (RHP Technology GmbH)04/11/2021, 11:10
Plasma Metal Deposition (PMD) is a Direct Energy Deposition (DED) method which allows to fabricate large and heavy parts by using wire or powder as feedstock which are fed into a plasma arc. PMD® allows the building of structures using deposition rates in the kilogram range. Besides the manufacturing of structural parts, the PMD process can be used for the fabrication of integrated cooling...
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Andreas Vogelpoth (Fraunhofer Institut für Lasertechnik)04/11/2021, 11:10
Most alloys used in laser powder bed fusion (LPBF) are conventional materials, which were designed for specific conventional processes and their constraints. These alloys are not capable to adapt to the special conditions in LPBF process e.g. the rapid solidification and cyclic heat treatments. Therefore, thermodynamic simulations are used to design new alloys for additive manufacturing (AM)....
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Mr Rudolf Gradinger04/11/2021, 11:30
In the Horizon 2020 project MULTI-FUN, the manufacturing of fully integrated multi-functionalities of metal parts is in the main focus. These functionalities include enhanced active/passive heat management embedded fibre-optical sensing as well as integrated electrical conductivity.
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Several additive layer manufacturing technologies are under development to generate both the internal... -
Emilie H. Valente (Technical University of Denmark)04/11/2021, 11:30
Stainless steel (SS) of type 316L is one of the go-to materials for metal additive manufacturing (AM), due to its good weldability. As-printed 316L SS made by AM has unconventionally good mechanical properties exhibiting both high strength and high ductility. However, the corrosion resistance is inadequate, and not on par with conventional 316L. Our research team has demonstrated proof of...
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Dr Martina Meisnar (Materials & Processes Engineer, European Space Agency), Dr Laurent Pambaguian (Materials & Processes Engineer, European Space Agency)04/11/2021, 13:00
During the last 20 years, the terms referring to “Additive Manufacturing” (AM) have evolved significantly. In the early days, reference was made to a process called “rapid prototyping” and “rapid manufacturing” was the consecrated term. This terminology remained even beyond the time in which the community started realising that, in fact, it is not necessarily a rapid process. While fashionable...
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Thomas Laag (Fraunhofer, ILT)04/11/2021, 13:40Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
Geometric accuracy of parts manufactured by Laser Powder Bed Fusion (LPBF) is deteriorated by powder particles sintered to the part surface as well as excessive melting due to overheating by limited heat flow at sharp contour corners. While the sintered powder particles increase the surface roughness, overheating leads to deviations of the as-built part geometry from the CAD geometry. Use of...
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Prof. Sophie Primig (School of Materials Science & Engineering, UNSW Sydney)04/11/2021, 13:40Oral Presentation
The inherent inhomogeneity and cyclic thermal loading in metal additive manufacturing (AM) significantly change the microstructural evolution and various types of solid/solid interfaces compared to traditional routes. However, the same AM characteristics will enable targeted microstructure and property control if the current fundamental understanding of the underlying phenomena can be...
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Robert Steinlechner (TU Wien)04/11/2021, 14:00Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
Additive manufacturing of heat treatable low alloy steels by
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Laser beam powder bed fusion (LB-PBF) offers a number of difficulties,
which is the reason why their use in commercial AM is rather limited
today. In the present study, processing of several AISI 4xxx type steels
(Cr-Mn-Mo alloyed) has been studied, and the processing windows have
been defined for 2 different machines, with... -
Dr Gerald Mitteramskogler (Incus GmbH)04/11/2021, 14:00
Lithographic additive manufacturing (AM) technologies are based on the concept of photopolymerization and are known for their process inherent high precision and good surface quality compared to other AM techniques. In this work, metallic suspensions comprising a photoreactive binder and 316L powder (50vol%) were used as starting material. After printing, the obtained green parts undergo a...
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William Hearn (Chalmers University of Technology)04/11/2021, 14:20Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
Carbon-containing ferrous alloys with >0.2 wt.% carbon are considered difficult to weld materials and are thus expected to have poor processability when using Laser Powder Bed Fusion (L-PBF). This is connected to the high cooling rates of L-PBF that result in the formation of martensite and internal residual stresses that create a significant risk of cold cracking within the material. However,...
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Jelle ten Kate (FMI Instrumed)04/11/2021, 14:20
Additive manufacturing (AM) has gained traction in orthopedics, so why isn’t it a plug-and-play technology yet? While AM has existed for years, mass implementation takes longer than most expect because AM requires a different approach to design and comprehensive knowledge of the entire process. This presentation will review ways that AM can add value and save when design and process are...
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Ms Marie-Noemi Bold (RWTH Aachen University)04/11/2021, 14:40Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
Laser Metal Deposition (LMD) is an established repair process for components such as thin-walled turbine blades. Repair of thin-walled structures encounters several challenges due to the limited heat transfer. If the narrow process window is not met, mechanical properties and geometric accuracy deteriorate. Because of the rising temperature during the LMD process, its parameters usually need...
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Mr QUENTIN POUILLE (CEA)04/11/2021, 14:40
During the last ten years, additive manufacturing by using power bed fusion technology has become a very reliable technology to produce complex metallic parts. Layer by layer manufacturing allows the integration of a fiber bragg grating inside the parts during the fabrication. The latter opens a lot of possibilities for structural health monitoring. It has a critical impact for the monitoring...
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Ms Marie-Noemi Bold (RWTH Aachen University)04/11/2021, 15:30Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
As Additive Manufacturing (AM) technologies mature, the lack of tailored alloys becomes more and more of an obstacle for a widespread application for AM. Alloy development has historically been a costly process taking decades or centuries. In the case of AM, however, new improved alloys have to be developed much faster, calling for time- and resource-efficient alloy development methods. These...
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Liang Wu (voestalpine Additive Manufacturing Center GmbH)04/11/2021, 15:30
The process-inherent advantages of Laser Powder Bed Fusion (L-PBF) have been exploited for many different applications nowadays, including the production of highly stressed inserts for the Al die-casting industry. However, similar to conventional production routes, performance and lifetime of AM-produced tools are still significantly determined by the specific material properties. Here,...
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Dr Leandro Feitosa (Sandvik Additive Manufacturing)04/11/2021, 15:50
Inconel 625 is a solid-solution strengthened alloy of great interest for the aerospace and oil and gas industries, due to its good mechanical and corrosion properties, besides microstructure stability up to 540 °C, providing a great potential for the additive manufacturing segment. In this study, Sandvik Osprey Inconel 625 powder, atomized via vacuum induction melting inert gas atomization...
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Mr Pierre Forêt (Linde GmbH)04/11/2021, 15:50Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
EOS and Linde combined their respective expertise to jointly undertake research in the field of additive manufacturing and material-gas interaction. The aim of this study was to improve AISi10Mg properties according to customer needs. The influence caused by different impurities of the process gas on the generated material quality as well as the influence on the process itself were...
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Mr Michael Härtel (AM Metals GmbH), Tanja Pfeifer (Pankl Racing Systems)04/11/2021, 16:10
In the presentation, newly developed high strength aluminium alloys of AM Metals GmbH and its possibilities in automotive applications are shown. Specific loads and requirements are discussed in connection exemplary 3D printed applications. In a sophisticated development process, new aluminium alloys for 3 D printing with unique properties were invented. They combine the strengtz of high...
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Mr Mirnes Berbic (ÖGI)04/11/2021, 16:10Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
- Strategies for the improvement of the overall service lifespan for high pressure die casting dies and the common failure mechanisms that lower this lifespan, like soldering and thermal fatigue behaviour with the correct combination of conventional and additive manufactured materials
- A comparison of conventional hot work tool steels, maraging steels and nickel-based alloys with their...
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Mr Bakir Mehic (University of Applied Sciences Upper Austria, Institute of Materials Science, Joining and Forming, Graz University of Technology)04/11/2021, 16:30
In contrast to the single-stage process, high deformation degrees can be achieved using multi-stage deep drawing strategies. However, the first forming step already leads to significant changes in the overall sheet metal forming behavior. Temperature changes are caused by friction and plastic deformation in an inhomogeneous manner, which in turn affect the whole subsequent drawing steps and...
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Mr Felix Benn (Queen's University Belfast)04/11/2021, 16:30Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
The use of bioresorbable materials for orthopaedic devices allows the sparing of the second (removal) surgery and could enhance bone regeneration mechanisms. One promising candidate from the biodegradable metals is Magnesium (Mg) as it comprises several advantages: degradability within the human body, high biocompatibility as Mg is part of our daily nutrition system and mechanical properties...
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Mrs Sepide Hadibeik (Austrian Academy of Sciences (ÖAW))04/11/2021, 16:50Laser Melting, Electron Beam Melting & Direct Energy Deposition ProcessesOral Presentation
Zr-based bulk metallic glasses show high glass forming ability and are attractive base materials for near future additive applications. A new composition was printed by in-situ alloying from elemental powders via selective laser melting. In order to obtain a glassy, crack-free and dense bulk parts, a wide range of laser and scanning parameters were used and optimized. An SLM machine equipped...
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Mrs Doina Raducanu (University Politehnica of Bucharest)04/11/2021, 16:50
The paper presents a part of an integrated experimental chain to manufacture new advanced biodegradable Mg-based implants from powder raw materials by Selective Laser Melting (SLM). The Mechanical Alloying (MA), as a complex solid-state synthesis procedure, was used for obtaining Mg powder alloys with different compositions in the system Mg-xZn-yZr-zCa: Mg-4Zn-0.8Ca-0.5Zr, Mg-6Zn-0.8Ca-0.5Zr...
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Dr Armin Wiedenegger (Managing Director, voestalpine Additive Manufacturing GmbH)05/11/2021, 09:00Plenary Talk
One of the key restrictions of conventional technologies is that you have to choose between large quantities of same design with low costs or small quantities of individualized design with high costs. Additive Manufacturing (AM) enables us now to overcome this restriction. It is now possible to print different designs in the same process. This leads to the possibility to reduce the production...
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Benedikt Blitz (SMR Premium GmbH)05/11/2021, 09:30Plenary Talk
The speech will also focus on the production of Metal Powders and Powder Metallurgical Steels and especially its associated production technologies like HIP, MIM and AM. As they are and will become key future core technologies for a number of demanding products and thus for the usage in different associated industries. The presentation will also highlight the actual supply and demand situation...
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Mr Mikael Åsberg (Karlstad University)05/11/2021, 10:30
Additive manufacturing (AM) of cold work tool steel is challenging due to the material’s proneness to thermal cracks and defects. These issues can be reduced by the use of electron powder bed fusion (E-PBF) manufacturing which provides higher build chamber temperature, pre-heating of the build and slower cooling of the builds compared to laser powder bed fusion (L-PBF). Still, microstructure...
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David Ohlsson (RISE)05/11/2021, 10:30
To accurately describe the Selective Laser Melting with the goal to study residual stress development and deformations induced by the manufacturing process is very challenging due to the complex physics of the process. A concentrated, fast moving heat source on a very small scale in intricate patterns, multiphysics and metallurgy combined creates quite a challenge. In this work, methods from...
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46. Creating Competitive Metal AM Production with High Volume and Flexibility Based on Digital TwinsMr Anders Hjermitslev (Danish Technological Institute)05/11/2021, 10:50
The Danish industry has been reluctant to adopt Metal AM, despite the enormous potential for tailored and flexible manufacturing. A national granted project called: “AM-LINE 4.0” (2018 – 2021) has paved the way for the Danish manufacturing industry by removing barriers preventing implementation. The project has a total budget of 12M EUR and is a partnership with the leading industrial...
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Mr Magnus Ahlfors (Quintus Technologies AB)05/11/2021, 10:50
Critical components made of high-performance materials subjected to fatigue
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loads have extreme demands on qualification and production control. Additive
Manufacturing is now an increasingly important technology for implementation
of bionic lightweight designs.
Over recent years, a great deal of research work has been carried out on additively manufactured
grade 5/23 titanium (Ti6Al4V) in... -
Dr Patrick Köhnen (RWTH Aachen University Digital Additive Production)05/11/2021, 11:10
Additive manufacturing makes it possible to produce highly complex components such as turbine blades with integrated cooling channels directly from a digital 3D CAD model. However, the material selection of nickel-base superalloys for the laser powder bed fusion (LPBF) process is limited to a few alloys that reveal a high printability, such as IN625 or IN718. These alloys, however, exhibit...
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Dr Paul A Davies (Powder Group - Sandvik)05/11/2021, 11:10
The microstructure of laser powder bed fusion (L-PBF) processed 18Ni300 differs from that of manufactured using conventional processing routes. The L-PBF steel, due to the non-equilibrium solidification, comprises a cellular/dendritic solidification structure with the presence of intercellular austenite as a result of heavy micro-segregation of alloying elements. On the other hand, the...
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Mr Louis Lemarquis (CEA)05/11/2021, 11:30
Additive Manufacturing (AM) technologies provide new opportunities to enhance some piece-producing processes in the industry: AM offers the possibility to produce complex-shaped parts that could require multiple manufacturing stages. Moreover, microstructures from Laser Powder Bed Fusion (LPBF) can heavily differ from microstructures usually obtained through traditional processes, showing...
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Mr Sasan Amirabdollahian (University of Trento)05/11/2021, 11:50
Maraging steels are a class of ultra-high-strength martensitic steels, strengthened by precipitation of intermetallic particles in the Fe-Ni martensite upon aging. Due to their low carbon content, these steels demonstrate excellent weldability and negligible dimensional changes after heat treatment, and hence several types of maraging steels have been developed for laser-based additive...
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