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SYSTEMIC MECHATRONIC FUNCTION DEVELOPMENT

Published online by Cambridge University Press:  27 July 2021

Udo Pulm*
Affiliation:
Hamburg University of Applied Sciences (HAW Hamburg)
Ralf Stetter
Affiliation:
Ravensburg-Weingarten University of Applied Sciences (RWU)
*
Pulm, Udo, Hamburg University of Applied Sciences (HAW Hamburg), Department of Mechanical Engineering, Germany, udo.pulm@haw-hamburg.de

Abstract

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Since decades, researchers are developing methods, tools, and processes for the development of mechatronic systems. In the last decade, this field has widened, including, amongst others, aspects such as cyber-physical systems (CPS) or the internet of things (IoT). Still, little concrete guidance can be identified for engineers who have to decide whether to realize a certain product function mechanically, electronically, through software functions, or with combinations thereof. The goal of the paper is to contribute to the development of guidelines for design engineers in which domain (or in which combination of domains and other areas) to allocate the solution for an engineering problem.

Type
Article
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), 2021. Published by Cambridge University Press

References

Barbieri, G., Fantuzzi, C. and Borsare, R. (2014) “A model-based design methodology for the development of mechatronic systems”. Mechatronics 24, 2014, pp. 833-843, http://doi.org/10.1016/j.mechatronics.2013.12.004.CrossRefGoogle Scholar
Eisenbart, B., Gericke, K., Blessing, L. and McAloone, T (2016) “A DSM-based Framework for Integrated Function Modelling: Concept, Application and Evaluation”, Research in Engineering Design, 2016, Vol. 28 No. 1, pp. 2551. https://doi.org/10.1007/s00163-016-0228-1.CrossRefGoogle Scholar
Holder, K., Zech, A., Ramsaier, M., Stetter, R., Niedermeier, H.-P., Rudolph, S. and Till, M. (2017) “Model-Based Requirements Management in Gear Systems Design based on Graph-Based Design Languages”. Appl. Sci. 2017, 7, 1112, https://dx.doi.org/10.3390/app7111112.Google Scholar
Pulm, U. (2005) “Product Development as a Complex Social System”. Proceedings of the 15th International Conference on Engineering Design 2005 (ICED05), Melbourne: The Design Society 2005.Google Scholar
Rajkumar, R. (2012) “A cyber-physical future”, Proceedings of the IEEE 2012, Vol. 100, Special Centennial Issue, pp. 1309-1312.Google Scholar
Reinprecht, M. (2020) “Entwicklung eines Heckkrafthebers mit dem Schwerpunkt Fehlertoleranz”. Thesis, RWU.Google Scholar
Restrepo, E., Lovik, A.N., Widmer, R., Wäger, P., and Müller, D.B. (2020) “Effects of car electronics penetration, integration and downsizing on their recycling potentials”. Resources, Conservation & Recycling: X 6 (2020) 100032.Google Scholar
Stetter, R. (2020a) “Approaches for Modelling the Physical Behavior of Technical Systems on the Example of Wind Turbines”. Energies (2020), Vol. 13, No. 8, 2087, https://doi.org/10.3390/en13082087.CrossRefGoogle Scholar
Stetter, R. (2020b) “Fault-Tolerant Design and Control of Automated Vehicles and Processes; Insights for the Synthesis of Intelligent Systems”; Springer: Berlin, Germany, 2020, https://dx.doi.org/10.1007/978-3-030-12846-3.CrossRefGoogle Scholar
Stetter, R.; Göser, R.; Gresser, S.; Till, M. and Witczak, M. (2020) Fault-tolerant design for increasing the reliability of an autonomous driving gear shifting system. Maintenance and Reliability, Vol. 22, No. 3, 2020, pp. 482-492. http://doi.org/10.17531/ein2020.3.11.CrossRefGoogle Scholar
VDI 2206 (2004) Design methodology for mechatronic systems. Beuth.Google Scholar
Walter, B., Kaiser, D. and Rudolph, S. (2019) “Machine-executable Model-based Systems Engineering with design languages”. In Complex Systems Design & Management; Banach, R., Razavi, J., Lesecq, S., Debicki, O., Mareau, N., Foucault, J., Correvon, M., Dudnik, G., Eds.; SPRINGER: Berlin, Germany, 2019; https://dx.doi.org/10.1007/978-3-030-04209-7_25.Google Scholar
Zech, A., Stetter, R., Holder, K., Rudolph, S. and Till, M. (2019) “Novel approach for a holistic and completely digital represented product development process by using graph-based design languages”. Procedia CIRP 2019, 79, 568573, https://dx.doi.org/10.1016/j.procir.2019.02.102.CrossRefGoogle Scholar
Zheng, C., Hehenberger, P., Le Duigou, J., Bricogne, M. and Eynard, B. (2017) “Multidisciplinary design methodology for mechatronic systems based on interface model”. Research in Engineering Design, 2017 28, pp. 333-356. https://doi.org/10.1007/s00163-016-0243-2.CrossRefGoogle Scholar