@article{22117,
  author       = {{Schramm, B. and Risse, L. and Brüggemann, J.P. and Richard, H.A. and Kullmer, G.}},
  journal      = {{Journal of 3D Printing in medicine}},
  title        = {{{Additive manufacturing for medical applications}}},
  volume       = {{2}},
  year         = {{2018}},
}

@inproceedings{22118,
  author       = {{Risse, L. and Schramm, B. and Schafran, T.}},
  booktitle    = {{PreDay AK Fußchirurgie}},
  title        = {{{Welche ingenieurstechnischen Perspektiven bietet die Versorgung durch additiv gefertigte Orthesen?}}},
  year         = {{2018}},
}

@inproceedings{22120,
  author       = {{Kummert, C. and Schmid, H.-J.}},
  booktitle    = {{29th Annual International Solid Freeform Fabrication Symposium}},
  title        = {{{The Influence of Contour Scanning Parameters and Strategy on Selective Laser Sintering PA613 Build Part Properties}}},
  volume       = {{29}},
  year         = {{2018}},
}

@inproceedings{22122,
  author       = {{Brüggemann, J.P. and Risse, L. and Grübel, A. and Richard, H.A. and Kullmer, G.}},
  booktitle    = {{DVM - Bericht 250, Arbeitskreis: Bruchmechanische Werkstoff- und Bauteilbewertung: Beanspruchungsanalyse, Prüfmethoden und Anwendungen, Deutscher Verband für Materialforschung und -prüfung e.V.}},
  pages        = {{89--98}},
  title        = {{{Validierung der strukturmechanischen Funktionsfähigkeit durch experimentelle Bauteilprüfungen additiv gefertigter Leichtbaustrukturen}}},
  doi          = {{10.1007/978-3-658-27412-2_1}},
  volume       = {{250}},
  year         = {{2018}},
}

@inproceedings{22125,
  abstract     = {{although it shows great potential. In this paper, first approaches}},
  author       = {{Dsuban, A. and Lohn, J. and Brüggemann, J.P. and Kullmer, G.}},
  booktitle    = {{DVM - Bericht 403, Arbeitskreis: Additiv gefertigte Bauteile und Strukturen, Deutscher Verband für Materialforschung und -prüfung e.V.}},
  pages        = {{110--110}},
  title        = {{{Entwicklung und Umsetzung eines Qualitätssicherungskonzeptes für die additive Fertigung}}},
  volume       = {{403}},
  year         = {{2018}},
}

@inproceedings{22126,
  author       = {{Brüggemann, J.P. and Risse, L. and Richard, H.A. and Kullmer, G.}},
  booktitle    = {{DVM - Bericht 403, Arbeitskreis: Additiv gefertigte Bauteile und Strukturen, Deutscher Verband für Materialforschung und -prüfung e.V.}},
  pages        = {{11--21}},
  title        = {{{Entwicklung von Optimierungsstrategien unter Ausnutzung des Potentials der additiven Fer-tigung}}},
  volume       = {{403}},
  year         = {{2018}},
}

@inproceedings{22139,
  author       = {{Risse, L. and Schramm, B. and Brüggemann, J.P. and Woodcock, S.C. and Kullmer, G. and Richard, H.A.}},
  booktitle    = {{DVM-Bericht 403, Arbeitskreis: Additiv gefertigte Bauteile und Strukturen, Deutscher Verband für Materialforschung und -prüfung e.V.}},
  pages        = {{89--100}},
  title        = {{{CAE-gestützte Optimierung eines Hüftimplantats durch Ausnutzung der Potentiale additiver Fertigungsverfahren}}},
  volume       = {{403}},
  year         = {{2018}},
}

@inproceedings{22145,
  abstract     = {{results clearly demonstrate the great potential of additive}},
  author       = {{Joy, T.D. and Brüggemann, J.P. and Kullmer, G.}},
  booktitle    = {{Procedia Structural Integrity}},
  pages        = {{in press}},
  title        = {{{Crack Growth Simulation with Adapcrack3D in 3D Structures under the influence of Temperature}}},
  year         = {{2018}},
}

@inproceedings{22147,
  author       = {{Brüggemann, J.P. and Risse, L. and Kullmer, G. and Schramm, B. and Richard, H.A.}},
  booktitle    = {{Procedia Structural Integrity}},
  pages        = {{in press}},
  title        = {{{Optimization of the fracture mechanical properties of additively manufactured EN AW-7075}}},
  doi          = {{10.1016/j.prostr.2018.12.052}},
  year         = {{2018}},
}

@inproceedings{22148,
  author       = {{Brüggemann, J.P. and Risse, L. and Kullmer, G. and Richard, H.A.}},
  booktitle    = {{Procedia Structural Integrity}},
  pages        = {{in press}},
  title        = {{{Fracture mechanical investigations on selective laser melted TiAl6V4}}},
  doi          = {{10.1016/j.prostr.2018.12.053}},
  year         = {{2018}},
}

@inproceedings{22150,
  author       = {{Risse, L. and Schramm, B. and Brüggemann, J.P. and Kullmer, G. and Richard, H.A.}},
  booktitle    = {{Proceedings of the 15th Rapid.Tech Conference}},
  pages        = {{405--417}},
  title        = {{{Entwicklung von steifigkeitsangepassten, lasergeschmolzenen Kurzschaft-Hüftendoprothesen}}},
  year         = {{2018}},
}

@inproceedings{22183,
  abstract     = {{Function integration is a key issue for an efficient and economic usage of Additive Manufacturing. An efficient heat transfer by topology optimized structures is a rarely considered approach which will be outlined with an exemplary electronic housing which has been newly designed. A commercial projector unit, whose electrical components in total produce 38 W, shall be integrated in the closed housing and passively cooled by natural convection. Topology optimized structures shall be generated in the inner part of the housing to transfer the heat homogenously from the projector components to the housing wall while simultaneously minimizing the mass. At the outside of the housing walls, lattice and rib structures are applied to increase the effective surface for heat transfer by natural convection and radiation. Furthermore, the housing geometry is optimized regarding a minimization of support structures to reduce the post-processing effort. Finally, the housing shall be built of AlSi10Mg by SLM.}},
  author       = {{Menge, Dennis and Delfs, Patrick and Töws, Marcel and Schmid, Hans-Joachim}},
  booktitle    = {{29th Annual International Solid Freeform Fabrication Symposium}},
  pages        = {{687--697}},
  title        = {{{Topology Optimized Heat Transfer Using the Example of an Electronic Housing}}},
  volume       = {{29}},
  year         = {{2018}},
}

@article{22196,
  abstract     = {{The influence of selective laser sintering (SLS) parameters on PA12 part properties is well known, but research on other materials is rare. One alternative material is a thermoplastic elastomer (TPE) called PrimePart ST that is more elastic and shows a distinct SLS processing behavior. It undergoes a three-dimensional temperature distribution during the SLS process within the TPE part cake. To examine this further, a temperature measurement system that allows temperature measurements inside the part cake is applied to TPE in the present work. Position-dependent temperature histories are directly correlated with the color and mechanical properties of built parts and are in very good agreement with artificial heat treatment in a furnace. Furthermore, it is clearly shown that the yellowish discoloration of parts in different intensities is not only temperature dependent but also influenced by the residual oxygen content in the process atmosphere. Nevertheless, the discoloration has no influence on the mechanical part properties.}},
  author       = {{Kummert, Christina and Josupeit, Stefan and Schmid, Hans-Joachim}},
  journal      = {{Journal of Minerals, Metals and Materials Society}},
  number       = {{3}},
  pages        = {{425--430}},
  publisher    = {{Springer}},
  title        = {{{Thermoplastic Elastomer Part Color as Function of Temperature Histories and Oxygen Atmosphere During Selective Laser Sinterung}}},
  doi          = {{10.1007/s11837-017-2658-2}},
  volume       = {{70}},
  year         = {{2018}},
}

@inproceedings{22430,
  author       = {{Urbanek, Stefan and Ponick, Bernd and Taube, Alexander and Hoyer, Kay-Peter and Schaper, Mirko and Lammers, Stefan and Lieneke, Tobias and Zimmer, Detmar}},
  booktitle    = {{Conference paper, 2018 IEEE Transportation Electrification Conference and Expo (ITEC), Juni 2018, DOI: 10.1109/ITEC.2018.8450250}},
  title        = {{{Additive Manufacturing of a Soft Magnetic Rotor Active Part and Shaft for a Permanent Magnet Synchronous Machine}}},
  year         = {{2018}},
}

@inproceedings{22433,
  author       = {{Tominski, Johannes and Lammers, Stefan}},
  booktitle    = {{14th PERMAS Users' Conference}},
  isbn         = {{978-3-926494-18-4}},
  title        = {{{Software-assisted design check of additive manufactured components}}},
  doi          = {{https://www.semanticscholar.org/paper/METHOD-FOR-A-SOFTWARE-BASED-DESIGN-CHECK-OF-Tominski-Lammers/83e141f55b33041ade5e661958b449047d6f026e#extracted}},
  volume       = {{14}},
  year         = {{2018}},
}

@inproceedings{22434,
  abstract     = {{This paper reports on the experimental development and the theoretical analysis of the scanning laser epitaxy (SLE) process that is currently being investigated and developed at the Georgia Institute of Technology. SLE is a laser-based manufacturing process for deposition of equiaxed, directionally solidified and single-crystal nickel superalloys onto superalloy substrates through the selective melting and re-solidification of superalloy powders. The thermal modeling of the system, done in a commercial CFD software package, simulates a heat source moving over a powder bed and considers the approximate change in the property values for consolidating CMSX-4 nickel superalloy powder. The theoretical melt depth is obtained from the melting temperature criteria and the resulting plots are presented alongside matching experimental micrographs obtained through cross-sectional metallography. The influence of the processing parameters on the microstructural evolution, as evidenced through observations made from the micrographs, is discussed. This work is sponsored by the Office of Naval Research, through grants N00173-07-1-G031 and N00014-10-1-0526.}},
  author       = {{Tominski, Johannes and Lammers, Stefan and Wulf, Christian and Zimmer, Detmar}},
  booktitle    = {{29th Annual International Solid Freeform Fabrication Symposium}},
  title        = {{{Method for a Software-based Design Check of Additively Manufactured Components}}},
  doi          = {{http://utw10945.utweb.utexas.edu/sites/default/files/2018/006%20MethodforaSoftwareBasedDesignCheckofAdditi.pdf}},
  volume       = {{29}},
  year         = {{2018}},
}

@inproceedings{22435,
  abstract     = {{In der Industrie entsteht aufgrund des dynamischen Wettbewerbsumfelds ein zunehmender Drang nach verkürzten Produktentstehungszeiten, hoher Funktionsintegration und individualisierten Produkten. Mithin erlangen additive Fertigungsverfahren eine zunehmende industrielle Bedeutung. Das Laser-Strahlschmelzen (LBM) als additives Verfahren ist hierbei beispielhaft hervorzuheben, da es bereits im Bereich des Prototypenbaus und der Kleinserienfertigung ein etabliertes Verfahren ist, das an der Schwelle zum Einsatz in der Serienproduktion steht. Entscheidendes Hemmnis für den Einsatz der additiven Fertigungsverfahren bildet die fehlende methodische Ausnutzung der gestalterischen Freiheiten und Randbedingungen durch die vergleichsweise neuartige Gruppe an Fertigungsverfahren im gesamten Produktentstehungsprozess. In der Produktentwicklung bildet die Konstruktionsmethodik einen möglichen Ansatz, um gestalterische Freiheiten und Vorteile additiver Fertigungsverfahren bereits in frühen Phasen der Entwicklung gezielt zu berücksichtigen. Hierfür werden aufgrund bestehender und allgemein anerkannter Konstruktionsmethoden (z.B. VDI2221, Pahl/Beitz, etc.) Anknüpfungspunkte aufgezeigt, die eine Implementierung, speziell des Laser-Strahlschmelzens, ermöglichen. Besonderes Augenmerk wird in dieser Veröffentlichung auf die beiden Konstruktionsphasen Konzeption und Gestaltung gelegt. Hierzu werden Ergänzungen oder Anpassungen der bestehenden Konstruktionsmethoden vorgestellt. In besonderer Weise wird dabei auf die Einbringung und die Vorteile der additiven Fertigungsverfahren eingegangen.}},
  author       = {{Künneke, Thomas and Bücker, Sonja and Lieneke, Tobias and Zimmer, Detmar}},
  booktitle    = {{Proceedings of the 15th Rapid.Tech Conference}},
  isbn         = {{978-3-446-45812-3}},
  pages        = {{128--143}},
  publisher    = {{Carl Hanser Verlag GmbH & Co. KG}},
  title        = {{{Ein Beitrag zur Anpassung bestehender Konstruktionsmethodiken an die additiven Fertigungsverfahren}}},
  doi          = {{10.3139/9783446458123.008}},
  year         = {{2018}},
}

@article{22436,
  abstract     = {{Die Additive Fertigung eröffnet neue Freiheitsgrade in der Produktentwicklung. Unsicherheiten über die Wirtschaftlichkeit und Leistungsfähigkeit der aus der Konstruktion ableitbaren Fertigungstechnologieketten sind zu beachten. In diesem Beitrag wird eine Methode vorgestellt, welche die Anpassung einer bestehenden Konstruktionsmethode berücksichtigt und eine iterative Bewertung der Konstruktionsentscheidungen anhand von Technologieketten ermöglicht. Hiermit können die Potenziale der additiven Fertigungstechnologien zielgerichtet realisiert werden.}},
  author       = {{Jacob, Alexander and Künneke, Thomas and Lieneke, Tobias and Baumann, Tobias and Stricker, Nicole and Zimmer, Detmar and Lanza, Gisela}},
  journal      = {{ZWF Zeitschrift für wirtschaftlichen Fabrikbetrieb}},
  number       = {{11}},
  pages        = {{742--745}},
  publisher    = {{Carl Hanser Verlag}},
  title        = {{{Iterative Produktentwicklung und Produktionsplanung für die Additive Fertigung}}},
  doi          = {{https://doi.org/10.3139/104.112005}},
  volume       = {{113}},
  year         = {{2018}},
}

@book{22506,
  author       = {{Brückner, Uwe and Künneke, Thomas and Schadomsky, Magnus Hubert and Strop, Malte and Zimmer, Detmar}},
  isbn         = {{978-3-446-45619-8}},
  pages        = {{247--290}},
  publisher    = {{Carl Hanser Verlag}},
  title        = {{{Elektromechanische Antriebe}}},
  doi          = {{10.3139/9783446456198.009}},
  year         = {{2018}},
}

@inproceedings{21696,
  abstract     = {{Theimplementation of additive manufacturing as an industrial manufacturing process poses extraordinary challenges to companies due to their far-reaching differences to conventional processes. In addition to the major differences in the production process, the pre and post process steps in particular also require a rethinking for companies and their employees. To overcome these challenges and specifically to assist SMEs in the integration of technologies five industrial companies are researching together within research project "OptiAMix", funded by the German Federal Ministry of Education and Research (BMBF) and coordinated by the Paderborn University. This paper focuses on the development of an optimal and standardized process chain and its implementation in a general integration methodology. This enables the standardized integration of additivemanufacturing in order to create a uniform understanding of the procedures and tasks within the company for the industrial application of additive manufacturing at an early stage as well as the full exploitation of its high potentials. Therefore, the methodology also includes other technology-specific components such as strategic component selection, decision support for "make or buy" and the implementation of automated component marking.}},
  author       = {{Büsching, J. and Lindemann, C. and Jahnke, U. and Kruse, A. and Koch, R.}},
  booktitle    = {{29th Annual International Solid Freeform Fabrication Symposium}},
  pages        = {{14--31}},
  title        = {{{Technology Integration into Existing Companies}}},
  doi          = {{http://utw10945.utweb.utexas.edu/sites/default/files/2018/002%20TechnologyIntegrationintoExistingCompanies.pdf}},
  volume       = {{29}},
  year         = {{2018}},
}

