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FLUID–STRUCTURE INTERACTION VIBRATION EXPERIMENTS AND NUMERICAL VERIFICATION OF A REAL MARINE PROPELLER

Abstract

The design of lifting blade shapes is a key engineering application, especially in domains such as those of marine propellers, hydrofoils, and tidal energy converters. In particular, the excitation frequency must be different from that of the structure to avoid resonance. The natural frequency in the cases where the fluid–structure interaction (FSI) is considerably different if considering the coupling added mass (AM) of the water. In this study, vibration experiments were performed using a real propeller in air and water. The modal parameters, natural frequencies, and mode shapes were determined. Validations were performed using 3D solid and acoustic elements in a direct coupling finite element format. The modal results and AM ratios were in agreement with the experimental results. Convenient application and high efficiency are basic requirements for an engineering application. Therefore, an empirical formula was established for the first-order FSI natural frequency to enable rapid estimation, thereby satisfying this requirement.

Keywords:

Fluid–structure interaction, Real propeller vibration experiments, Direct coupling, Finite element method, Added mass ratios

Details

Issue
Vol. 28 No. 3(111) (2021)
Section
Latest Articles
Published
14-10-2021
DOI:
https://doi.org/10.2478/pomr-2021-0034
Licencja:
Creative Commons License

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

Open Access License

This journal provides immediate open access to its content under the Creative Commons BY 4.0 license. Authors who publish with this journal retain all copyrights and agree to the terms of the CC BY 4.0 license.

 

Authors

  • Benqiang Lou

    Jiangsu University of Science and Technology, School of Naval Architecture and Ocean Engineering
  • Hongyu Cui

    Dalian University of Technology

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