Abstract
AbstractIn this publication, the methods will be presented that are deployed to formulate a multi-physical system model of a direct drive wind turbine in order to calculate structure borne sound. The model includes excitation effect as well as sound radiating behaviour. The mechanical structure as a medium partner between excitation and radiation will be formulated through a multi-body simulation model in the time domain. In the multi-body simulation model, all relevant drivetrain components are considered with their structural eigenmodes in the frequency range of interest. The electromagnetic forces of the multi-pole ring generator are calculated and introduced into the mechanical structure at each stator tooth, rotor pole and various axial positions individually. Similarly, the modelling of the bearings is investigated for a range of available methods. Sound emission is evaluated at the large outer surface structures like tower, blades and nacelle cover. To minimize computational effort, the surface accelerations are not calculated for each surface node, instead a modal approach is used. Through a combination of mode shapes with mode participation factors of the respective structures, the surface accelerations can be regained during a post-processing step. Those results are used as input for airborne sound calculations. Nevertheless, the high number of modal and spatial degrees of freedom results in high computing costs.
Funder
Bundesministerium für Wirtschaft und Energie
RWTH Aachen
Publisher
Springer Science and Business Media LLC
Reference15 articles.
1. Duda T, Jacobs G, Bosse D (2019) Investigation of modeling depths for an electromechanical simulation of a direct-drive generator considering parasitic airgap forces and external loads. J Phys Conf Ser 1222:12029
2. Duda T, Jacobs G, Bosse D (2019) Electromechanical simulation of a direct-drive generator considering parasitic magnetic forces and external loads. In: 2019 Conference for Wind Power Drives (CWD), Aachen
3. Mülder C, Jacobs G, Duda T, Hameyer K (2019) Model approach for electromagnetically excited mechanical vibrations in direct-drive wind turbines. J Phys Conf Ser 1618:22060
4. Craig R, Bampton M (1968) Coupling of substructures for dynamic analysis. AIAA J 6(7):1313–1319
5. Jonkman J, Hayman B, Jonkman B, Damiani R, Murray R (2015) AeroDyn v15 user’s guide and theory manual. National Renewable Energy Laboratory, Golden (Technical report)
Cited by
3 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献