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DIGITAL LIBRARY: SAMPE 2023 | SEATTLE, WA | APRIL 17-20

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CONCEPT STUDY OF A LIGHTWEIGHT HIGH PERFORMANCE AXIAL FLUX MOTOR COOLED WITH CRYOGENIC HYDROGEN

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Title: CONCEPT STUDY OF A LIGHTWEIGHT HIGH PERFORMANCE AXIAL FLUX MOTOR COOLED WITH CRYOGENIC HYDROGEN

Authors: André Baeten, Sabrina Barm, Markus Fackler, Neven Majic, Johannes Reitenberger, Timon Guenther, Christoph Lohr, Markus Sause, Anna Trauth, Richard Weihrich, Timo Koerner, Christian Oblinger

DOI: 10.33599/nasampe/s.23.0059

Abstract: In this paper a concept study for a lightweight cryogenic hydrogen cooled axial flux motor is presented. The concept is based on a hybrid material design to fulfill the electro-magnetic, thermal, chemical, and mechanical requirements for a high-performance electrical drive train for Urban Air Mobility (UAM) applications. The concept study focuses on the virtual pre-design of the rotor stator combination and the cooling system using composites and ferromagnetic ma-terials. FE and electro-magnetic performance simulation results based on trade studies will be presented as well as an outlook for the thermal and chemical material characterization the cool-ing system operated with cryogenic hydrogen.

References: 1. M. Hepperle, “Electric Flight - Potential and Limitations”, DLR, 2012 2. F. Oliviero, G. la Rocca, J. Sun, C. Varriale, “Optimal Control And Energy Management For Hybrid Aircraft”, TU Delft, 2022 3. W. Geng, Y. Wang, J. Hou, J. Guo, Z. hang, “Comparative Study of Yokeless Stator Axial-Flux PM Machines having Fractional Slot Concentrated and Integral Slot Distributed Winding for Electric Vehicle Traction Applications“, IEEE Transactions on Industrial Electronics, 2022 4. F. Caricchi, F. G. Capponi, F. Crescimbini, and L. Solero, “Experimental study on reducing cogging torque and no-load power loss in axial-flux permanent-magnet machines with slotted winding,” IEEE Trans. Ind. Appl., 2004 5. F. Zhao, T.A. Lipo, B. Kwon, “A Novel Dual-Stator Axial-Flux Spoke-Type Permanent Magnet Vernier Machine for Direct-Drive Applications”, IEEE Trans. Magn., 2014 6. F. Locment, E. Semail, and F. Piriou, “Design and study of a multiphase axial-flux machine,” IEEE Trans. Magn., 2006 7. Dunn, MG. "Convective Heat Transfer and Aerodynamics in Axial Flow Turbines." Turbo Expo: Power for Land, Sea, and Air, 2001 8. J. Chang, Y. Fan, J. Wu, B. Zhu, “A yokeless and segmented armature axial flux machine with novel cooling system for in-wheel traction applications“, IEEE Transactions on Industrial Electronics , 2021 9. H. Broch, “Direct Drive PMSM Characteristics for Retrofit in Regional Turboprops Using a “Design Space Approach”, Norwegian University of Science and Technology, 2022 10. E. Gundabattini, A. Mystkowski, A. Idzkowski, R. Singh, D. Salomon, “Thermal Mapping of a High-Speed Electric Motor Used for Traction Applications and Analysis of Various Cooling Methods”, Vellore Institute of Technology, 2021 11. I. Graessler, J. Hentze and T. Bruckmann, V-MODELS FOR INTERDISCIPLINARY SYSTEMS ENGINEERING. INTERNATIONAL DESIGN CONFERENCE - DESIGN 2018. DOI: 10.21278/idc.2018.0333 12. Aydin, M., S. Huang, T.A. Lipo, Axial Flux Permanent Magnet Disc Machines: A Review. Wisconsin Electric Machines&PowerElectronics Consortium, 2004. 13. J. Lienhard IV and J. Lienhard V, A heat transfer textbook. 5ft ed. Cambridge, Massachusetts: Phlogiston Press, 2020. 14. S. B. Giddings,Hawking radiation, the Stefan–Boltzmann law, and unitarization. Physics Letters B, Volume 754, Pages 39-42, ISSN 0370-2693, Elsevier, 2016. DOI:10.1016/j.physletb.2015.12.076. 15. S. Kahourzade, A. Mahmoudi, H. W. Ping and M. N. Uddin, A Comprehensive Review of Axial-Flux Permanent-Magnet Machines. Canadian Journal of Electrical and Computer Engineering, vol. 37, no. 1, pp. 19-33, 2014. DOI: 10.1109/CJECE.2014.2309322 16. G. Hunter,D. Makel, E. Jansa, G. Patterson, P. Cova, C. Liu, Q. Wu, W. Powers, A hydrogen leak detection system for aerospace and commercial applications. 31st Joint Propulsion Conference and Exhibit, 2012. DOI:10.2514/6.1995-2645 17. S. Jenwit, and C. Benyajati. “Liquid Cooled Induction Motor: Computational Design, Heat Transfer Analysis, Parametric Study, and Performance Testing.” SAE International Journal of Alternative Powertrains, vol. 2, no. 1, 2013, pp. 1–6. JSTOR, http://www.jstor.org/stable/26167714. Accessed 5 Jan. 2023 18. J. Pyrhoenen, P. Lindh, M. Polikarpova, E. Kurvinen, V. Naumanen, Heat-transfer improvements in an axial-flux permanent-magnet synchronous machine. Applied Thermal Engineering,Volume 76, Pages 245-251, ISSN 1359-4311, 2015. DOI:10.1016/j.applthermaleng.2014.11.003. 19. A. Demsis, S.V. Prabhu, A. Agrawal,Influence of wall conditions on friction factor for flow of gases under slip condition. Experimental Thermal and Fluid Science,Volume 34, Issue 8, Pages 1448-1455, ISSN 0894-1777, Elsevier, 2010. DOI:10.1016/j.expthermflusci.2010.07.008 20. Kim, M.-S.; Lee, T.; Son, Y.; Park, J.; Kim, M.; Eun, H.; Park, J.-W.; Kim, Y. Metallic Material Evaluation of Liquid Hydrogen Storage Tank for Marine Application Using a Tensile Cryostat for 20 K and Electrochemical Cell. Processes 2022, 10, 2401. DOI:10.3390/pr10112401 21. T. Ritchey, General morphological analysis (GMA). Wicked problems–Social messes. Berlin, Heidelberg, Springer, 2011. 22. D. Rakov, Morphological methods of searching for new engineering solutions and their use in Industry 4.0. Journal of Physics: Conference Series, Volume 1679, Cybernetics and IT,2020. DOI: 10.1088/1742-6596/1679/4/042083 23. H. Horinouchi, M. Shinohara, T. Otsuka, K. Hashizume, T. Tanabe, Determination of hydrogen diffusion and permeation coefficients in pure copper at near room temperature by means of tritium tracer techniques, Journal of Alloys and Compounds,Volume 580, Supplement 1, Pages S73-S75, ISSN 0925-8388, 2013. DOI:10.1016/j.jallcom.2013.03.293 24. Y.Bijan, J. Yu, J. Stracener, and T. Woods, Systems requirements engineering—State of the methodology. Systems Engineering, 16(3), 267-276, 2013. DOI:10.1002/sys.21227 25. EASA Directive Part 21.A „Airworthiness and Environmental Certification 26. EASA CS-E in its current amendment 6 from july 1st 2020 27. V. Chapurlat, UPSL-SE: A model verification framework for Systems Engineering. Computers in Industry,Volume 64, Issue 5, Pages 581-597, ISSN 0166-3615, Elsevier, 2013. DOI:10.1016/j.compind.2013.03.002. 28. C. Enss, S. Hunklinger, Tieftemperaturphysik. Springer-Verlag Berlin Heidelberg, pp. 465, 2000. DOI:10.1007/978-3-642-57265-4 29. P. Soden, A. Kaddour, and M. Hinton, “Recommendations for designers and researchers resulting from the world-wide failure exercise,” Composites Science and Technology, vol. 64, no. 3-4, pp. 589–604, 2004, DOI: 10.1016/S0266-3538(03)00228-8. 30. A. S. Kaddour, M. J. Hinton, and P. D. Soden, “A comparison of the predictive capabilities of current failure theories for composite laminates: additional contributions,” Composites Science and Technology, vol. 64, no. 3-4, pp. 449–476, 2004, DOI: 10.1016/S0266-3538(03)00226-4. 31. A. S. Kaddour and M. J. Hinton, “Maturity of 3D failure criteria for fibre-reinforced composites: Comparison between theories and experiments: Part B of WWFE-II,” Journal of Composite Materials, vol. 47, no. 6-7, pp. 925–966, 2013, DOI:10.1177/0021998313478710. 32. R. F. Nicholls-Lee, T. D. Bostock, and P. Watt, “Fully submerged composite cryogenic testing,” in 18th International conference on composite materials, 2011. 33. G. Geiss, “Einfluss von Tieftemperatur und Wasserstoff auf das Versagensverhalten von Glasfaser-Verbundwerkstoffen unter statischer und zyklischer Belastung,” Universitaet Karlsruhe (TH), 2001. 34. R. Radebaugh, “Cryocoolers: the state of the art and recent developments,” J. Phys. Condens. Matter, vol. 21, no. 16, p. 164219, Apr. 2009. 35. R. J. Huang, Q. Liu, L. F. Li, L. H. Gong, H. M. Liu, and D. Xu, “Cryogenic mechanical property testing system directly cooled by G-M cryocooler,” 2014, pp. 81–85. 36. H. Haefele, A. Trauth and M.G.R. Sause, INVESTIGATION OF MODE I FRACTURE TOUGHNESS OF CARBON FIBER REINFORCED POLYMERS AT CRYOGENIC TEMPERATURES” – Proceedings of the 20th European Conference on Composite Materials, ECCM20. 26-30 June, 2022, Lausanne, Switzerland 37. L. Gabele, A. Trauth and M.G. R. Sause: “DEVELOPMENT OF A TEST RIG FOR THE TEMPERATURE-DEPENDENT DETERMINATION OF COMPOSITE MATERIAL PROPERTIES AT CRYOGENIC TEMPERATURES”, Composites Meet Sustainability – Proceedings of the 20th European Conference on Composite Materials, ECCM20. 26-30 June, 2022, Lausanne, Switzerland 38. Oxygen-free Copper Cu-OF – Luvata Alloy OF-OK 39. EXPERIMENTAL TECHNIQUES FOR LOW-TEMPERATURE MEASUREMENTS: Cryostat Design, Material Properties, and Superconductor Critical-Current Testing, JACK W. EKIN, 2006 40. Estimation/Assessment of Oxygen content in copper by Metallographic method, Devdutt Singh, Vivek, Mittal , Subodh Rana, International Research Journal of Engineering and Technology (IRJET), 2018 41. Qiu, Y.; Yang, H.; Tong, L.; Wang, L. Research Progress of Cryogenic Materials for Storage and Transportation of Liquid Hydrogen. Metals 2021, 11, 1101. DOI:10.3390/met11071101 42. Kotter, Philipp; Morisco, David; Boesing, Matthias; Zirn, Oliver; Wegener, Konrad (2018): Noise-Vibration-Harshness-Modeling and Analysis of a Permanent-Magnetic Disc Rotor Axial-Flux Electric Motor. In: IEEE Trans. Magn. 54 (3), S. 1–4. DOI: 10.1109/TMAG.2017.2759244 43. Park, Sunghyuk; Kim, Wonho; Kim, Sung-Il (2014): A Numerical Prediction Model for Vibration and Noise of Axial Flux Motors. In: IEEE Trans. Ind. Electron. 61 (10), S. 5757–5762. DOI: 10.1109/TIE.2014.2300034 44. Galati M, Minetola P. Analysis of Density, Roughness, and Accuracy of the Atomic Diffusion Additive Manufacturing (ADAM) Process for Metal Parts. Materials (Basel). 2019 Dec 9;12(24):4122. DOI:10.3390/ma12244122. PMID: 31835380; PMCID: PMC6947362. 45. Henry, T.C., Morales, M.A., Cole, D.P. et al. Mechanical behavior of 17-4 PH stainless steel processed by atomic diffusion additive manufacturing. Int J Adv Manuf Technol 114, 2103–2114 (2021). 46. S. Singh, S. Ramakrishna, R. Singh, Material issues in additive manufacturing: A review. Journal of Manufacturing Processes,Volume 25, Pages 185-200, ISSN 1526-6125, 2017, DOI:10.1016/j.jmapro.2016.11.006. 47. D. Herzog, V. Seyda, E. Wycisk, C. Emmelmann, Additive manufacturing of metals. Acta Materialia,Volume 117,Pages 371-392,ISSN 1359-6454,2016. DOI:10.1016/j.actamat.2016.07.019.

Conference: SAMPE 2023

Publication Date: 2023/04/17

SKU: TP23-0000000059

Pages: 15

Price: $30.00

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