Energy flow and performance evaluation of inerter-based vibration isolators mounted on finite and infinite flexible foundation structures

Author:

Dong Zhuang1,Yang Jian1ORCID,Zhu Chendi1ORCID,Chronopoulos Dimitrios2ORCID,Li Tianyun3

Affiliation:

1. Department of Mechanical, Materials and Manufacturing Engineering, University of Nottingham Ningbo China, Ningbo, PR China

2. Department of Mechanical Engineering and Mecha(tro)nic System Dynamics (LMSD), KU Leuven, Leuven, Belgium

3. School of Naval Architecture and Ocean Engineering, Huazhong University of Science and Technology, Wuhan, PR China

Abstract

This study investigates the vibration power flow behavior and performance of inerter-based vibration isolators mounted on finite and infinite flexible beam structures. Two configurations of vibration isolators with spring, damper, and inerter as well as different rigidities of finite and infinite foundation structures are considered. Both the time-averaged power flow transmission and the force transmissibility are studied and used as indices to evaluate the isolation performance. Comparisons are made between the two proposed configurations of inerter-based isolators and the conventional spring-damper isolators to show potential performance benefits of including inerter for effective vibration isolation. It is shown that by configuring the inerter, spring, and damper in parallel in the isolator, anti-peaks are introduced in the time-averaged transmitted power and force transmissibility at specific frequencies such that the vibration transmission to the foundation can be greatly suppressed. When the inerter is connected in series with a spring-damper unit and then in-parallel with a spring, considerable improvement in vibration isolation can be achieved near the original peak frequency while maintaining good high-frequency isolation performance. The study provides better understanding of the effects of adding inerters to vibration isolators mounted on a flexible foundation, and benefits enhanced designs of inerter-based vibration suppression systems.

Funder

national natural science foundation of china

Zhejiang Provincial Natural Science Foundation of China

Publisher

SAGE Publications

Subject

Mechanical Engineering

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