A model reduction method for bladed disks with large geometric mistuning using a partially reduced intermediate system model

Research output: Chapter in book/report/conference proceedingConference contributionResearchpeer review

Authors

  • Lukas Schwerdt
  • Lars Panning-von Scheidt
  • Jörg Wallaschek
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Details

Original languageEnglish
Title of host publicationStructures and Dynamics
Subtitle of host publicationStructural Mechanics, Vibration, and Damping; Supercritical CO2
PublisherAmerican Society of Mechanical Engineers(ASME)
ISBN (electronic)9780791884232
Publication statusPublished - 11 Jan 2021
EventASME Turbo Expo 2020: Turbomachinery Technical Conference and Exposition, GT 2020 - online, Virtual, Online
Duration: 21 Sept 202025 Sept 2020

Publication series

NameProceedings of the ASME Turbo Expo
Volume11

Abstract

Reduced order models (ROMs) are widely used to enable efficient simulation of mistuned bladed disks. ROMs based on projecting the system dynamics into a subspace spanned by the modes of the tuned structure work well for small amounts of mistuning. When presented with large mistuning, including changes of geometry and number of finite element mesh nodes, advanced methods such as the the pristine-rogue-interface modal expansion (PRIME) are necessary. PRIME builds a reduced model from two full cyclic symmetric analyses, one for the nominal and one for the modified type of sector. In this paper a new reduced order model suitable for large mistuning with arbitrary mesh modifications is presented. It achieves higher accuracy than PRIME, while saving approximately 25% computational effort during the reduction process, when using the same number of cyclic modes. The new method gains its efficiency by recognizing that large modifications from damage or repair are unlikely to be exactly the same for multiple blades. It works by building a partially reduced intermediate model: All nominal sectors are reduced using cyclic modes of the tuned structure. The single modified sector is kept as the full model. For this reason, the new reduction method is called Partially Reduced Intermediate System Model (PRISM) method. The accuracy of the PRISM method is demonstrated on an axial compressor blisk and an academic blisk geometry.

ASJC Scopus subject areas

Cite this

A model reduction method for bladed disks with large geometric mistuning using a partially reduced intermediate system model. / Schwerdt, Lukas; Panning-von Scheidt, Lars; Wallaschek, Jörg.
Structures and Dynamics: Structural Mechanics, Vibration, and Damping; Supercritical CO2. American Society of Mechanical Engineers(ASME), 2021. (Proceedings of the ASME Turbo Expo; Vol. 11).

Research output: Chapter in book/report/conference proceedingConference contributionResearchpeer review

Schwerdt, L, Panning-von Scheidt, L & Wallaschek, J 2021, A model reduction method for bladed disks with large geometric mistuning using a partially reduced intermediate system model. in Structures and Dynamics: Structural Mechanics, Vibration, and Damping; Supercritical CO2. Proceedings of the ASME Turbo Expo, vol. 11, American Society of Mechanical Engineers(ASME), ASME Turbo Expo 2020: Turbomachinery Technical Conference and Exposition, GT 2020, Virtual, Online, 21 Sept 2020. https://doi.org/10.1115/GT2020-14199
Schwerdt, L., Panning-von Scheidt, L., & Wallaschek, J. (2021). A model reduction method for bladed disks with large geometric mistuning using a partially reduced intermediate system model. In Structures and Dynamics: Structural Mechanics, Vibration, and Damping; Supercritical CO2 (Proceedings of the ASME Turbo Expo; Vol. 11). American Society of Mechanical Engineers(ASME). https://doi.org/10.1115/GT2020-14199
Schwerdt L, Panning-von Scheidt L, Wallaschek J. A model reduction method for bladed disks with large geometric mistuning using a partially reduced intermediate system model. In Structures and Dynamics: Structural Mechanics, Vibration, and Damping; Supercritical CO2. American Society of Mechanical Engineers(ASME). 2021. (Proceedings of the ASME Turbo Expo). doi: 10.1115/GT2020-14199
Schwerdt, Lukas ; Panning-von Scheidt, Lars ; Wallaschek, Jörg. / A model reduction method for bladed disks with large geometric mistuning using a partially reduced intermediate system model. Structures and Dynamics: Structural Mechanics, Vibration, and Damping; Supercritical CO2. American Society of Mechanical Engineers(ASME), 2021. (Proceedings of the ASME Turbo Expo).
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