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Correction published on 17 August 2026, see Eng. Proc. 2026, 133(1), 207.
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Proceeding Paper

Vibroacoustic Optimization of the Airframe Using Energy Harvesting Resonators: An Experimental and Numerical Approach †

Institute of Structural Mechanics and Lightweight Design, RWTH Aachen University, Wüllnerstraße 7, 52066 Aachen, Germany
*
Author to whom correspondence should be addressed.
Presented at the 15th EASN International Conference, Madrid, Spain, 14–17 October 2025.
Eng. Proc. 2026, 133(1), 150; https://doi.org/10.3390/engproc2026133150
Published: 15 May 2026 / Corrected: 17 August 2026

Abstract

The open fan as a highly efficient propulsion concept is a promising approach to reduce climate-damaging emissions in aviation. However, the increased vibroacoustic emissions of the fan resulting from the open design lead to elevated cabin noise. Energy harvesting resonators can be used to leverage the piezoelectric effect and to attenuate structural vibrations caused by the acoustic loading simultaneously. To evaluate the potential of a specific configuration of energy harvesting resonators, an investigation of the dynamic interaction between the airframe and the resonators is necessary. Therefore, the eigenmodes and eigenfrequencies of a representative stiffened plate are determined experimentally using modal analysis via laser scanning vibrometry. A finite element model of the stiffened plate with the resonator idealized as a mass–spring element is implemented. The stiffness of this simplified resonator model is calibrated by correlating simulated with experimental results following a model updating approach. Finally, an optimization framework designed to determine the optimal quantity and placement of resonators using the experimentally validated model and representative loads is implemented to maximize both vibroacoustic attenuation and energy harvesting efficiency. The resulting framework serves as a generalized optimization tool capable of systematically optimizing the resonator configuration based on airframe geometry and specified vibroacoustic loading scenarios.
Keywords: modal analysis; model updating; vibration control; vibroacoustic optimization modal analysis; model updating; vibration control; vibroacoustic optimization

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MDPI and ACS Style

Mock, F.; Kettenhofen, L.; Alboldt, D.; Schröder, K.-U. Vibroacoustic Optimization of the Airframe Using Energy Harvesting Resonators: An Experimental and Numerical Approach. Eng. Proc. 2026, 133, 150. https://doi.org/10.3390/engproc2026133150

AMA Style

Mock F, Kettenhofen L, Alboldt D, Schröder K-U. Vibroacoustic Optimization of the Airframe Using Energy Harvesting Resonators: An Experimental and Numerical Approach. Engineering Proceedings. 2026; 133(1):150. https://doi.org/10.3390/engproc2026133150

Chicago/Turabian Style

Mock, Florian, Lukas Kettenhofen, Daniel Alboldt, and Kai-Uwe Schröder. 2026. "Vibroacoustic Optimization of the Airframe Using Energy Harvesting Resonators: An Experimental and Numerical Approach" Engineering Proceedings 133, no. 1: 150. https://doi.org/10.3390/engproc2026133150

APA Style

Mock, F., Kettenhofen, L., Alboldt, D., & Schröder, K.-U. (2026). Vibroacoustic Optimization of the Airframe Using Energy Harvesting Resonators: An Experimental and Numerical Approach. Engineering Proceedings, 133(1), 150. https://doi.org/10.3390/engproc2026133150

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