Integrated design of system structure and delayed resonator towards efficient non-collocated vibration absorption

Fuente: arXiv
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Main Authors: Peichl, Adam, Kuře, Matěj, Michiels, Wim, Vyhlídal, Tomáš
Format: Preprint
Published: 2025
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_version_ 1866912402569691136
author Peichl, Adam
Kuře, Matěj
Michiels, Wim
Vyhlídal, Tomáš
author_facet Peichl, Adam
Kuře, Matěj
Michiels, Wim
Vyhlídal, Tomáš
contents The problem of non-collocated vibration absorption by a delayed resonator is addressed with emphasis on system fatigue resistance and energy efficiency of control actions. The analysis is performed for a system consisting of an arbitrary large series of flexibly linked single-degree-of-freedom masses. For the stage where the vibration of the target mass is fully absorbed by the non-collocated resonator, key forces, motion amplitudes and potential energies across the system structure are assessed. Next, a complete parameter set of the resonator gain and delay is derived, and the actuation force and power needed by the resonator for the full vibration absorption is determined. The derived quantities are utilized in forming an optimization problem to balance minimal risk of fatigue across the system structure and power needed by the resonator, under the closed loop stability and parameter constraints. Next to the gain and delay of the resonator, selected structural parameters of the system are used as variables in the constrained nonlinear optimization problem. Experimental and numerical case studies are included to demonstrate benefits of the proposed integrated structural and control design.
format Preprint
id arxiv_https___arxiv_org_abs_2505_23608
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Integrated design of system structure and delayed resonator towards efficient non-collocated vibration absorption
Peichl, Adam
Kuře, Matěj
Michiels, Wim
Vyhlídal, Tomáš
Systems and Control
Optimization and Control
93D15
I.6.5; F.2.1
The problem of non-collocated vibration absorption by a delayed resonator is addressed with emphasis on system fatigue resistance and energy efficiency of control actions. The analysis is performed for a system consisting of an arbitrary large series of flexibly linked single-degree-of-freedom masses. For the stage where the vibration of the target mass is fully absorbed by the non-collocated resonator, key forces, motion amplitudes and potential energies across the system structure are assessed. Next, a complete parameter set of the resonator gain and delay is derived, and the actuation force and power needed by the resonator for the full vibration absorption is determined. The derived quantities are utilized in forming an optimization problem to balance minimal risk of fatigue across the system structure and power needed by the resonator, under the closed loop stability and parameter constraints. Next to the gain and delay of the resonator, selected structural parameters of the system are used as variables in the constrained nonlinear optimization problem. Experimental and numerical case studies are included to demonstrate benefits of the proposed integrated structural and control design.
title Integrated design of system structure and delayed resonator towards efficient non-collocated vibration absorption
topic Systems and Control
Optimization and Control
93D15
I.6.5; F.2.1
url https://arxiv.org/abs/2505.23608