Published September 29, 2022 | Version 2

Design of an aircraft generator with radial force control

  • 1. Laboratory for Machine Tools and Production Engineering (WZL), RWTH Aachen University, Campus-Boulevard 30, 52074 Aachen, Germany
  • 2. Romax Technology Ltd., a Hexagon company, Ergo House, Mere Way, Ruddington Fields Business Park, Nottingham, NG11 6JS, UK
  • 3. MSC Software GmbH, a Hexagon company, Am Moosfeld 13, Munich, 81829, Germany
  • 4. Power Electronics, Machines and Control (PEMC) Research Centre, University of Nottingham, Engineering Department, Jubilee Campus, Wollaton Road, Nottingham, NG8 1BB, UK

Description

With the increasing electrical energy demands in aviation propulsion systems, the increase in the onboard generators' power density is inevitable. During the flight, forces coming from the gearbox or gyroscopic forces generated by flight manoeuvres like take-off and landing can act on the generators' bearings, which can lead to wear and fatigue in the bearings. Utilizing the radial force control concept in the electrical machine can relieve loads from the bearings that not only minimize the bearing losses but also increase bearing life. The objective of the MAGLEV project (Measurement and Analysis of Generator bearing Loads and Efficiency with Validation) is to study, demonstrate, and test a new class of high-speed generators with radial force control. In this paper, design steps of this type of generator and its test rig are presented and the measurement methodology used for radial force control is explained. The concept is developed in an electrical machine and is validated on a test rig by measuring required parameters like shaft displacement, vibrations and bearing temperature. Additionally, the friction moment of each generator's bearings is measured and validated in a separate test rig under comparable conditions to the bearing loads in the generator. Therefore, a novel approach to determine precisely the bearing friction in a radial load unit, rotatably supported by an additional needle bearing is used, which shows a good agreement with the calculated friction. Furthermore, new calculation methods for the operating behavior of cylindrical roller bearings with clearance are presented, which are utilized in the generator test rig.

Files

openreseurope-2-16333.pdf

Files (5.6 MB)

Name Size Download all
md5:cc5081ed18e34147e7e161dadccb43cc
5.6 MB Preview Download

Additional details

References

  • (2020). A380: Aircraft characteristics airport and maintenance planning.
  • Madonna V, Giangrande P, Galea M (2018). Electrical power generation in aircraft: Review, challenges, and opportunities. IEEE Transactions on Transportation Electrification. doi:10.1109/TTE.2018.2834142
  • Goi T (2015). T-IDG® Technology Overview.
  • Harrington I, Graham JH, Dixon R (2014). Managing loads on aircraft generators to prevent overheat in-flight. SAE 2014 Aerospace Systems and Technology Conference. doi:10.4271/2014-01-2195
  • Valente G, Papini L, Formentini A (2018). Radial force control of multisector permanent-magnet machines for vibration suppression. IEEE Trans Ind Electron. doi:10.1109/TIE.2017.2780039
  • Bozhkom S, Rashed M, Hill CI (2017). Flux-weakening control of electric starter-generator based on permanent-magnet machine. IEEE Transactions on Transportation Electrification. doi:10.1109/TTE.2017.2718221
  • Bozhko S, Yang T, Le Peuvedic JM (2018). Development of aircraft electric starterâgenerator system based on active rectification technology. IEEE Transactions on Transportation Electrification. doi:10.1109/TTE.2018.2863031
  • Brecher C, Eckel HM, Fey M (2018). Prozesskraftmessung mit spindelintegrierter Sensorik. ZWF - Zeitschrift für wirtschaftlichen Fabrikbetrieb. doi:10.3139/104.111982
  • Spachtholz G (2008). Erweiterung des Leistungsbereiches von Spindellagern.
  • Valente G (2018). Radial Force Control of Bearingless Multi-Sector Permanent Magnet Machines.
  • Valente G, Formentini A, Papini L (2017). Position control study of a bearingless multi-sector permanent magnet machine. doi:10.1109/IECON.2017.8217548
  • Brecher C, Fey M, Falker J (2019). Simulation schnell drehender wellen-lager-systeme -teil 1: Berechnung von hochgeschwindigkeitswälzlagern in wellen-lager-systemen. Antriebstechnik.
  • Körner G, Schulz A (2002). Newspilad version 1.0c - berechnungsprogramm des werkzeugmaschinenlabors der rwth aachen.
  • Tüllmann U, Butz F (2003). Winlager2v0 - berechnungsprogramm des werkzeugmaschinenlabors der rwth aachen.
  • Falker J (2019). Analyse des Betriebsverhaltens von Hochgeschwindigkeits-Wälzlagern unter radialen Lasten.
  • Tüllmann U (1999). Das Verhalten axial verspannter, schnelldrehender Schrägkugellager.
  • Rossaint J (2013). Steigerung der Leistungsfähigkeit von Spindellagern durch optimierte Lagergeometrien.
  • Steinert T (1996). Das Reibmoment von Kugellagern mit bordgeführtem Käfig.
  • Butz F (2007). Gestaltung der Loslagerung von Werkzeugmaschinenspindeln.
  • (null). Mesys shaft calculation.
  • Timbó R, Martins R, Bachmann G (2020). Ross - rotordynamic open source software. J Open Source Softw. doi:10.21105/joss.02120
  • Gärtner M, Brecher C, Neus S (2022).
  • Gupta PK (2011). Current status of and future innovations in rolling bearing modeling. Tribology Transactions. doi:10.1080/10402004.2010.551805
  • Brecher C, Neus S, Gärtner M (2021). Generator mit Radialkraftregelung optimiert Luftfahrttechnik.
  • (2007). Rolling bearings – dynamic load ratings and rating life.
  • (2008). Rolling bearings — methods for calculating the modified reference rating life for universally loaded bearings.
  • Wang D (2015). Berechnung der Wälzlagerreibung aufgrund weiterentwickleter rheologischer Fluidmodelle.
  • Brecher C, Rossaint J, Hassis A (2014). Cage friction in high-speed spindle bearings. Tribology Transactions - Official Journal of the Society of Tribologists and Lubrication Engineers. doi:10.1080/10402004.2013.843738
  • Stachowiak GW, Batchelor AW (2014). Engineering Tribology.
  • Brecher C, Weck M (2017). Werkzeugmaschinen, Fertigungssysteme. doi:10.1007/978-3-662-46567-7
  • Marjadi D, Park Y, Gasevski D (2021). Simulation Driven Design Workflow for Aircraft Gearbox. doi:10.2514/6.2020-2648
  • Yoo HG, Chung WJ, Kim BS (2022). Application of flexible pin for planetary gear set of wind turbine gearbox. Sci Rep. doi:10.1038/s41598-022-05828-1
  • (null). Hexagon.