Additive Fertigung

Industrial Application of 3D-Printing Systems

Industrial Application of 3D-Printing Systems

General Guidance
Martin Bednarz
Additive Manufacturing (AM), also commonly called 3D-Printing, is very recent technology. Numerous innovations have improved their capabilities in the last few years. These improvements combined with ambitious promises made by 3D-Printing companies have led to some disregard of the physical and economical limitations of these technologies. As impressive as the opportunities especially in light weight construction may be, the technical, physical and economical restrictions have to be considered. This article focuses on the premises and restraints as well as the opportunities of AM-technology.
Industrie 4.0 Management | Volume 36 | 2020 | Edition 4 | Pages 63-66
Lithography-based Metal Manufacturing

Lithography-based Metal Manufacturing

New Additive Manufacturing Technology to Produce Small High-precision Metal Components
Andreas Baum, Chiara Armbruster, Carlo Burkhardt
Additive manufacturing (AM) has become one of the biggest trends in modern, industrial ma-nufacturing. The diverse requirements of various industries have led to many different AM processes and process variants. By using AM, advantages such as function integration, lightweight construction or increased efficiency can be enabled. But most of the known AM processes are still facing technological and economic challenges. Especially in applications requiring high accuracy for small parts, production has often been uneconomic until now. Here, the new Lithography-based Metal Manufacturing technology offers new possibilities and opportunities.
Industrie 4.0 Management | Volume 36 | 2020 | Edition 4 | Pages 7-10 | DOI 10.30844/I40M_20-4_S7-10
Agile Product Development Using Additive Manufacturing

Agile Product Development Using Additive Manufacturing

An Approach for a Better Customer Orientation in Product Development
Philipp Blattert, Rouven Müller, Werner Engeln
The increasing complexity forces industrial companies to look for new strategies for a future-proof product development. One approach to this is agile approaches in product development in combination with additive manufacturing processes. Physical product increments can thus be produced during sprints and analyzed and improved directly with customers. This improves the product understanding of the development team and customers. The benefits are shorter development times, better customer orientation of the products and a lower project risk.
Industrie 4.0 Management | Volume 36 | 2020 | Edition 4 | Pages 59-62 | DOI 10.30844/I40M_20-4_S59-62
Blockchain as Enabler of a Decentralized Additive Manufacturing Production Network

Blockchain as Enabler of a Decentralized Additive Manufacturing Production Network

Wjatscheslav Baumung, Herbert Glöckle, Vladislav Fomin
The toolfree production of parts using 3D printing technology enables dynamic use of the production area. On the one hand, this makes it possible to react flexibly to changes and, on the other hand, to achieve a high level of efficiency in the production units. The blockchain technology enables a common database between the participants. This leads to a verifiable collaboration in the case of the relationship between customer and manufacturer. This paper describes how available additive manufacturing resources can be identified and offered in a decentralized production network.
Industrie 4.0 Management | Volume 35 | 2019 | Edition 1 | Pages 39-42 | DOI 10.30844/I40M_19-1_S39-42
Bionic Smart Factory 4.0 – Factory Framework for Additive Manufacturing of Complex Production Programs

Bionic Smart Factory 4.0 - Factory Framework for Additive Manufacturing of Complex Production Programs

Konzept einer Fabrik zur additiven Fertigung komplexer Produktionsprogramme
Claus Emmelmann, Markus Möhrle, Mauritz Möller, Jan-Peer Rudolph ORCID Icon, Nikolai D’Agostino
Current advances result in increasingly complex production programs. Through combination of additive manufacturing and Industry 4.0, new elements can be formed and - as a whole - enable to economically manufacture the above mentioned programs. The Bionic Smart Factory 4.0 provides a framework, structuring them in terms of relation and interaction. Their development and implementation is being promoted through their evaluation against the determinants of complex production programs.
Industrie 4.0 Management | Volume 33 | 2017 | Edition 4 | Pages 38-42
Additive Manufacturing of Cutting Tools

Additive Manufacturing of Cutting Tools

Potentialities and Challenges
Martin Reuber, Tobias Schwanekamp
Metal-cutting manufacturing companies constantly demand for highly efficient process layouts which can particularly be achieved by the utilization of application optimized special tools. Conventional methods for the manufacturing of cutting tools are subject to restrictions, particularly with respect to the inner and outer shape design. At this point, additive manufacturing offers a substantial innovation potential. Through the buildup by layers, design limits of conventional methods are repealed and the production of complex and individual structures is feasible. Against the background of these process-specific potentialities, the iWFT and associated research and industry partners are developing a process chain for additive manufacturing of tungsten carbide cutting tools in the framework of the joint research project PraeziGen.
Industrie 4.0 Management | Volume 32 | 2016 | Edition 5 | Pages 12-16
Concrete 4.0? Additive Fabrication in Building Industries

Concrete 4.0? Additive Fabrication in Building Industries

Asko Fromm, Roman Gerbers, Stefan Neudecker
Architectural design is traditionally limited by the availability of fabrication tools and increasing loan costs. Especially in concrete industries this has a great effect due to the intensive need of manual craftsmanship at the production of formwork. By introducing additive fabrication processes and methods of Industry 4.0 as advanced inspection procedures new design limits can be discovered. To produce large scale concrete elements with high surface qualities and high accuracy at joints in short time hybrid fabrication processes can be a solution. At TU Braunschweig a new generative method is investigated where concrete is sprayed on an adaptive formwork and graded surfaces can be generated.
Industrie 4.0 Management | Volume 32 | 2016 | Edition 5 | Pages 21-25
Switchover to Additive Manufacturing?

Switchover to Additive Manufacturing?

An Investment Decision Based on the Concept of Sustainable Production
Timo Klünder, Marion Steven
The proliferation of technological innovations in additive manufacturing is accompanied by an increasing awareness of sustainability. In order to achieve an adequate investment methodical support is needed. A set of indicators for sustainable production represents the performance of a technology. Since an evaluation of technologies is subjective individual preferences of decision makers have to be taken into account. Hence, the multiple-criteria decision analysis methodology PROMETHEE is applicable in this context.
Industrie 4.0 Management | Volume 32 | 2016 | Edition 5 | Pages 7-11
Additive Manufacturing als Process Ready for Serial Production

Additive Manufacturing als Process Ready for Serial Production

Christian Lindemann, Ulrich Jahnke, Eric Klemp, Rainer Koch
The additive production processes are increasingly developed from Rapid Prototyping to Additive Manufacturing (AM), which provides an outstanding technological and economic potential for a variety of industries. Particularly in the area of varied small series production these technologies offer significant advantages in terms of reducing component weight, the integration of additional functions and the production of complex geometries or individual components. Due to the juvenileness of the technology there is a lack of knowledge concerning the technology itself, its possibilities and application potentials in many companies. In addition the costs are often regarded as a critical success factor for the widespread use of the technology. In particular the smart use of AM will affect the positive impact on the future economic use of a product throughout its life cycle.
Industrie Management | Volume 29 | 2013 | Edition 2 | Pages 25-28
Future Customization  Interdisciplinary Basic Research in the SFB 814

Future Customization Interdisciplinary Basic Research in the SFB 814

Additive Manufacturing
Dietmar Drummer, Robert F. Singer, Carolin Körner, Michael Schmidt, Florian Kühnlein, Maximilian Drexler, Michael Karg, Thorsten Scharowsky
The increasing complexity of technical components and shorter product life cycles make high demands on the flexibility and the efficiency of production processes. Additive manufacturing processes comply with this requirement profile. So far, these methods particularly in the desktop prototyping and manufacturing are common. The undisputed high potential for individual production of small batches by means of additive manufacturing processes is so far due to the low reproducibility of the manufactured components not been fully utilized in terms of a rapid manufacturing. Especially powder- and beam-based additive manufacturing technologies offer in terms of recoverable component strengths with both metallic and polymeric materials have a promising range of applications. The basic scientific study of this process is the goal of the Collaborative Research Centre 814 Additive Manufacturing (SFB 814). In the following article, aims and initial results from the SFB 814 are shown.
Industrie Management | Volume 29 | 2013 | Edition 2 | Pages 33-38
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