4.7 Article

Parameter optimization of an inerter-based isolator for passive vibration control of Michelangelo's Rondanini Pieta

期刊

MECHANICAL SYSTEMS AND SIGNAL PROCESSING
卷 98, 期 -, 页码 667-683

出版社

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ymssp.2017.05.030

关键词

Inerter; Passive vibration control; Parameter optimization; Performance index; Firefly algorithm; Tuned mass-damper-inerter

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Preserving cultural heritage against earthquake and ambient vibrations can be an attractive topic in the field of vibration control. This paper proposes a passive vibration isolator methodology based on betters for improving the performance of the isolation system of the famous statue of Michelangelo Buonarroti Pieta Rondanini. More specifically, a five degree-of-freedom (5DOF) model of the statue and the anti-seismic and anti-vibration base is presented and experimentally validated. The parameters of this model are tuned according to the experimental tests performed on the assembly of the isolator and the structure. Then, the developed model is used to investigate the impact of actuation devices such as tuned mass-damper (TMD) and tuned mass-damper-inerter (TMDI) in vibration reduction of the structure. The effect, of implementation of TMDI on the 5DOF model is shown based on physical limitations of the system parameters. Simulation results are provided to illustrate effectiveness of the passive element of TMDI in reduction of the vibration transmitted to the statue in vertical direction. Moreover, the optimal design parameters of the passive system such as frequency and damping coefficient will be calculated using two different performance indexes. The obtained optimal parameters have been evaluated by using two different optimization algorithms: the sequential quadratic programming method and the Firefly algorithm. The results prove significant reduction in the transmitted vibration to the structure in the presence of the proposed tuned TMDI, without imposing a large amount of mass or modification to the structure of the isolator. (C) 2017 Elsevier Ltd. All rights reserved.

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