Tunable High-Static-Low-Dynamic Stiffness Isolator under Harmonic and Seismic Loads

Author:

Iarriccio Giovanni1ORCID,Zippo Antonio1ORCID,Eskandary-Malayery Fatemeh2,Ilanko Sinniah2,Mochida Yusuke2ORCID,Mace Brian3,Pellicano Francesco1ORCID

Affiliation:

1. Department of Engineering “Enzo Ferrari”, University of Modena and Reggio Emilia, Via Vivarelli 10, 41125 Modena, Italy

2. School of Engineering, University of Waikato, Hamilton 3216, New Zealand

3. Department of Mechanical and Mechatronics Engineering, University of Auckland, Auckland 1030, New Zealand

Abstract

High-Static-Low-Dynamic Stiffness (HSLDS) mechanisms exploit nonlinear kinematics to improve the effectiveness of isolators, preserving controlled static deflections while maintaining low natural frequencies. Although extensively studied under harmonic base excitation, there are still few applications considering real seismic signals and little experimental evidence of real-world performance. This study experimentally demonstrates the beneficial effects of HSLDS isolators over linear ones in reducing the vibrations transmitted to the suspended mass under near-fault earthquakes. A tripod mechanism isolator is presented, and a lumped parameter model is formulated considering a piecewise nonlinear–linear stiffness, with dissipation taken into account through viscous and dry friction forces. Experimental shake table tests are conducted considering harmonic base motion to evaluate the isolator transmissibility in the vertical direction. Excellent agreement is observed when comparing the model to the experimental measurements. Finally, the behavior of the isolator is investigated under earthquake inputs, and results are presented using vertical acceleration time histories and spectra, demonstrating the vibration reduction provided by the nonlinear isolator.

Funder

Ministry of Business and Innovation and Employment

Publisher

MDPI AG

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