Investigation on the Torsional–Flexural Instability Phenomena during the Bending Process of Hairpin Windings: Experimental Tests and FE Model Validation
Author:
Mangeruga Valerio1ORCID, Barbieri Saverio Giulio1ORCID, Giacopini Matteo1ORCID, Giuradei Fabrizio2, Vai Piermaria2, Gerada Chris3
Affiliation:
1. Engineering Department “Enzo Ferrari”, University of Modena and Reggio Emilia, 41125 Modena, Italy 2. SCHMID E-MOTIVE Technologies s.r.l., 25080 Nuvolera, Italy 3. Faculty of Engineering, University of Nottingham, Nottingham NG7 2RD, UK
Abstract
Modern electric motors developed for the automotive industry have an ever higher power density with a relatively compact size. Among the various existing solutions to improve torque and power density, a reduction in the dimensions of the end-windings has been explored, aiming to decrease volume, weight, and losses. However, more compact end-windings often lead to complex shapes of the conductors, especially when preformed hairpin windings are considered. The rectangular cross-section of hairpin conductors makes them prone to deviating out of the bending plane during the forming process. This phenomenon, known as torsional–flexural instability, is influenced by the specific aspect ratio of the cross-section dimensions and the bending direction. This study focuses on understanding this instability phenomenon, aiming to identify a potential threshold of the cross-section aspect ratio. The instability makes it difficult to predict the final geometry, potentially compromising the compliance with the geometric tolerances. A finite element model is developed to analyse a single planar bend in a hairpin conductor. Various cross-section dimensions with different aspect ratios are simulated identifying those that experience instability. Moreover, an experimental campaign is conducted to confirm the occurrence of instability by testing the same single planar bending. The experimental data obtained are used to validate the finite element model for the tested dimensions. The aim is to provide designers with a useful tool to select hairpin geometries that are more suitable for the folding process, contributing to successful assembly and improving the overall design process of preformed hairpin conductors.
Funder
European Union’s Horizon 2020 research and innovation programme
Reference21 articles.
1. Study on the Dynamics of the In-Wheel Motor System;Luo;IEEE Trans. Veh. Technol.,2012 2. Arzillo, A., Braglia, P., Nuzzo, S., Barater, D., Franceschini, G., Gerada, D., and Gerada, C. (2020, January 17–19). Challenges and Future Opportunities of Hairpin Technologies. Proceedings of the 2020 IEEE 29th International Symposium on Industrial Electronics (ISIE), Delft, The Netherlands. 3. Berardi, G., Nategh, S., Bianchi, N., and Thioliere, Y. (2020, January 18–21). A Comparison between Random and Hairpin Winding in E-Mobility Applications. Proceedings of the IECON 2020 The 46th Annual Conference of the IEEE Industrial Electronics Society, Singapore. 4. Venturini, G., Volpe, G., Villani, M., and Popescu, M. (2020, January 23–26). Investigation of Cooling Solutions for Hairpin Winding in Traction Application. Proceedings of the 2020 International Conference on Electrical Machines, ICEM 2020, Gothenburg, Sweden. 5. Cutuli, G., Barater, D., Nategh, S., and Raghuraman, B. (2022, January 5–8). Aluminum Hairpin Solution for Electrical Machines in E-Mobility Applications: Part I: Electromagnetic Aspects. Proceedings of the 2022 International Conference on Electrical Machines (ICEM), Valencia, Spain.
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