English

Non-collocated vibration absorption using delayed resonator for spectral and spacial tuning -- analysis and experimental validation

Systems and Control 2025-04-03 v1 Systems and Control Optimization and Control

Abstract

Non-collocated vibration absorption (NCVA) concept using delayed resonator for in-situ tuning is analyzed and experimentally validated. There are two critical contributions of this work. One is on the scalable analytical pathway for verifying the concept of resonant substructure as the basis of the ideal vibration absorption. The second is to experimentally validate the spatial and spectral tunability of NCVA structures for the first time. For both novelties arbitrarily large dimensions of interconnected mass-spring-damper chains are considered. Following the state of the art on NCVA, control synthesis is performed over the resonant substructure comprising the delayed resonator and a part of the primary structure involved in the vibration absorption. The experimental validation of the proposed NCVA concept is performed on a mechatronic setup with three interconnected cart-bodies. Based on the spectral analysis, an excitation frequency is selected for which a stable vibration suppression can be achieved sequentially for all the three bodies, one collocated and two non-collocated. The experimental results closely match the simulations for complete vibration suppression at the targeted bodies, and thus validating the crucial spatial tunability characteristic as well as the traditional spectral tuning.

Keywords

Cite

@article{arxiv.2504.01812,
  title  = {Non-collocated vibration absorption using delayed resonator for spectral and spacial tuning -- analysis and experimental validation},
  author = {Matěj Kuře and Adam Peichl and Jaroslav Bušek and Nejat Olgac and Tomáš Vyhlídal},
  journal= {arXiv preprint arXiv:2504.01812},
  year   = {2025}
}

Comments

17 pages, 9 figures, submitted to Automatica October 7, 2024

R2 v1 2026-06-28T22:44:02.120Z