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Providing a knowledge-based design catalog as an approach to support the development of design for additive manufacturing skills

Published online by Cambridge University Press:  16 May 2024

Gregory-Jamie Tüzün*
Affiliation:
University of Stuttgart, Germany
Daniel Roth
Affiliation:
University of Stuttgart, Germany
Matthias Kreimeyer
Affiliation:
University of Stuttgart, Germany

Abstract

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Proficiency in design for additive manufacturing (DfAM) requires training and a lot of trial and error. To support the development of DfAM skills, we redesigned 47 design artifacts from case studies and derived tacit knowledge from successful and unsuccessful redesigns. All knowledge about these artifacts was then collected in a design catalog. In a workshop with a total of 48 graduates and students, 45 participants deemed the design catalog supportive. After evaluating their designs, we concluded that the use of a knowledge-based design catalog can develop and improve individual DfAM skills.

Type
Design for Additive Manufacturing
Creative Commons
Creative Common License - CCCreative Common License - BYCreative Common License - NCCreative Common License - ND
This is an Open Access article, distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivatives licence (http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is unaltered and is properly cited. The written permission of Cambridge University Press must be obtained for commercial re-use or in order to create a derivative work.
Copyright
The Author(s), 2024.

References

Bin Maidin, S., Campbell, I. and Pei, , E. (2012), “Development of a design feature database to support design for additive manufacturing”, Assembly Automation, Vol. 32 No. 3, pp. 235-244. https://doi.org/10.1108/01445151211244375CrossRefGoogle Scholar
Blösch-Paidosh, A. and Shea, K. (2017), “Design heuristics for additive manufacturing”, Proceedings of the 21st International Conference on Engineering Design (ICED 17) Vol 9: Design Education, Vancouver, Canada, August 21-25, 2017, The Design Society, Glasgow, pp. 91-100.Google Scholar
Blösch-Paidosh, A. and Shea, K. (2022), “Industrial evaluation of design heuristics for additive manufacturing”, Design Science, Vol. 8, p. e13. https://doi.org/10.1017/dsj.2022.8CrossRefGoogle Scholar
Booth, J.W., Alperovich, J., Chawla, P., Ma, J., Reid, T.N. and Ramani, K. (2017), “The Design for Additive Manufacturing Worksheet”, Journal of Mechanical Design, Vol. 139 No. 10, p. 100904. https://doi.org/10.1115/1.4037251CrossRefGoogle Scholar
Borgianni, Y., Pradel, P., Berni, A., Obi, M. and Bibb, R. (2022), “An investigation into the current state of education in Design for Additive Manufacturing”, Journal of Engineering Design, Vol. 33 No. 7, pp. 461490. https://doi.org/10.1080/09544828.2022.2102893CrossRefGoogle Scholar
Borgue, O., Müller, J., Leicht, A., Panarotto, M. and Isaksson, O. (2019), “Constraint Replacement-Based Design for Additive Manufacturing of Satellite Components: Ensuring Design Manufacturability through Tailored Test Artefacts”, Aerospace, Vol. 6 No. 11, p. 124. https://doi.org/10.3390/aerospace6110124CrossRefGoogle Scholar
Chakrabarti, A. (2001), “Sharing in Design – Categories, Importance and Issues”, Proceedings of the 13th International Conference on Engineering Design (ICED01), Glasgow, United Kingdom, August 21-23, 2001, pp. 563-570.Google Scholar
Fu, K.K., Yang, M.C. and Wood, K.L. (2016), “Design Principles: Literature Review, Analysis, and Future Directions”, Journal of Mechanical Design, Vol. 138 No. 10. https://doi.org/10.1115/1.4034105.CrossRefGoogle Scholar
Garrelts, E., Roth, D. and Binz, H. (2021), “Concept of a design catalog for the function integrated design of additively manufactured components”, Stuttgarter Symposium für Produktentwicklung SSP 2021, Stuttgart, Germany, May 20, 2021, Fraunhofer-Institut für Arbeitswirtschaft und Organisation IAO, Stuttgart.Google Scholar
Kaspar, J., Reichwein, J., Kirchner, E. and Vielhaber, M. (2019), “Integrated Design Pattern Matrix for Additive Manufacturing – A Holistic Potential Analysis for Systemic Product and Production Engineering”, Proceedings of the 29th CIRP Design Conference 2019, May 8-10, 2019, Póvoa de Varzim, Portugal, 2019, pp. 480-485. https://doi.org/10.1016/j.procir.2019.04.195CrossRefGoogle Scholar
Kuschmitz, S., Watschke, H., Schumacher, F. and Vietor, T. (2019), “Provision of design principles for additive manufacturing to support conceptual design in industrial practice”, Proceedings of the 16th Rapid.Tech Conference, Erfurt, Germany, June 25-27, 2019, Carl Hanser, Munich, pp. 75-88.Google Scholar
Lauff, C.A., Perez, K.B., Camburn, B.A. and Wood, K.L. (2019), “Design Principle Cards: Toolset to Support Innovations With Additive Manufacturing”, Proceedings of the ASME 2019 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, Anaheim, California, USA, June 8-13, 2008, American Society of Mechanical Engineers, p. DETC2019-97231. https://doi.org/10.1115/DETC2019-97231CrossRefGoogle Scholar
Laverne, F., Marquardt, R., Segonds, F., Koutiri, I. and Perry, N. (2019), “Improving resources consumption of additive manufacturing use during early design stages: a case study”, International Journal of Sustainable Engineering, Vol. 12 No. 6, pp. 365-375. https://doi.org/10.1080/19397038.2019.1620897CrossRefGoogle Scholar
Mascitelli, R. (2003), “From Experience: Harnessing Tacit Knowledge to Achieve Breakthrough Innovation”, Journal of Product Innovation Management, Vol. 17, pp. 179-193. https://doi.org/10.1111/1540-5885.1730179CrossRefGoogle Scholar
Perez, B., Hilburn, S., Jensen, D. and Wood, K.L. (2019), “Design principle-based stimuli for improving creativity during ideation”, Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, Vol. 233 No. 2, pp. 493-503. https://doi.org/10.1177/0954406218809117Google Scholar
Perez, K. B., Anderson, D.S., Höltta-Otto, K., Wood, Kristin L. (2015), “Crowdsourced Design Principles for Leveraging the Capabilities of Additive Manufacturing”, Proceedings of the 20th International Conference on Engineering Design (ICED 15) Vol 4: Design for X, Design to X, Milan, Italy, July 27-30, 2015, The Design Society, Glasgow, pp. 291-300.Google Scholar
Prabhu, R., Simpson, T.W., Miller, S.R., Cutler, S.L. and Meisel, N.A. (2021), “Teaching Designing for Additive Manufacturing: Formulating Educational Interventions That Encourage Design Creativity”, 3D printing and additive manufacturing, Vol. 10 No. 2. https://doi.org/10.1089/3dp.2021.0087Google Scholar
Rosen, D.W., Seepersad, C.C., Simpson, T.W. and Williams, C.B. (2015), “Special Issue: Design for Additive Manufacturing: A Paradigm Shift in Design, Fabrication, and Qualification”, Journal of Mechanical Design, Vol. 137 No. 11, p. 110301. https://doi.org/10.1115/1.4031470CrossRefGoogle Scholar
Roth, K. (2001), Konstruieren mit Konstruktionskatalogen - Band 2: Kataloge, Springer, Berlin and Heidelberg. https://doi.org/10.1007/978-3-642-17467-4CrossRefGoogle Scholar
Schaechtl, P., Goetz, S., Schleich, B. and Wartzack, S. (2023), “Knowledge-driven Design for Additive Manufacturing: A framework for design adaptation”, Proceedings of the Design Society: 24th International Conference on Engineering Design (ICED23), Bordeaux, France, July 24-28, 2023, Cambridge University Press, pp. 2405-2414. https://doi.org/10.1017/pds.2023.241CrossRefGoogle Scholar
Schumacher, F., Watschke, H., Kuschmitz, S. and Vietor, T. (2019), “Goal Oriented Provision of Design Principles for Additive Manufacturing to Support Conceptual Design”, Proceedings of the Design Society: 22nd International Conference on Engineering Design (ICED19), Delft, The Netherlands, August 5-8, 2019, pp. 749-758. https://doi.org/10.1017/dsi.2019.79CrossRefGoogle Scholar
Thomas-Seale, L.E., Kanagalingam, S., Kirkman-Brown, J.C., Attallah, M.M., Espino, D.M. and Shepherd, D.E. (2022), “Teaching design for additive manufacturing: efficacy of and engagement with lecture and laboratory approaches”, International Journal of Technology and Design Education, Vol. 33 No. 2, pp. 585-622. https://doi.org/10.1007/s10798-022-09741-6CrossRefGoogle Scholar
Tüzün, G.-J., Roth, D., Kreimeyer, M. (2022), “Additive Manufacturing Conformity – A Practical View”, Proceedings of the DESIGN2022 17th International Design Conference, Cavtat, Croatia, May 23-26, 2022, Cambridge University Press, pp. 1481-1490. https://doi.org/10.1017/pds.2022.150CrossRefGoogle Scholar
Valjak, F. and Bojčetić, N. (2019), “Conception of Design Principles for Additive Manufacturing”, Proceedings of the Design Society: 22nd International Conference on Engineering Design (ICED19), Delft, The Netherlands, August 5-8, 2019, Cambridge University Press, pp. 689-698. https://doi.org/10.1017/dsi.2019.73CrossRefGoogle Scholar
Valjak, F., Kosorčić, D., Rešetar, M. and Bojčetić, N. (2022), “Function-Based Design Principles for Additive Manufacturing”, Applied Sciences, Vol. 12 No. 7, p. 3300. https://doi.org/10.3390/app12073300CrossRefGoogle Scholar
VDI (1982), VDI 2222-2:1982: Design engineering methodics - Setting up and use of design catalogues, Verein Deutscher Ingenieure, Berlin and Cologne, Germany.Google Scholar
Watschke, H., Kuschmitz, S., Heubach, J., Lehne, G., Vietor, T. (2019), “A Methodical Approach to Support Conceptual Design for Multi-Material Additive Manufacturing”, Proceedings of the Design Society: 22nd International Conference on Engineering Design (ICED19), Delft, The Netherlands, August 5-8, 2019, Cambridge University Press, pp. 659668. https://doi.org/10.1017/dsi.2019.70CrossRefGoogle Scholar
Weiss, F., Binz, H. and Roth, D. (2016) “Conception of a design catalogue for the development of functionalities with additive manufacturing”, Proceedings of NordDesign 2016, Volume 2, Trondheim, Norway, August 10-12, 2016, The Design Society, Glasgow, pp. 2-11.Google Scholar
Weiss, F., Roth, D., Binz, H. (2018) “Content and functions of an internet-based platform for supporting development of additively manufactured parts”, Proceedings of the DESIGN 2018 15th International Design Conference. Dubrovnik, Croatia, May 21-24, 2018, The Design Society, Glasgow, United Kingdom, pp. 1417-1428. https://doi.org/10.21278/idc.2018.0191CrossRefGoogle Scholar
Wohlers, T.T., Campbell, I., Diegel, O., Huff, O., Kowen, J. and Mostow, N. (2021), Wohlers Report 2021: 3d Printing and Additive Manufacturing Global State of the Industry, Wohlers Associates: Fort Collins Colorado.Google Scholar
Wong, W.L.P. and Radcliffe, D.F. (2000), “The Tacit Nature of Design Knowledge”, Technology Analysis & Strategic Management, Vol. 12 No. 4, 2000, pp. 493-512. https://doi.org/10.1080/713698497CrossRefGoogle Scholar