Leveraging skybridge in coupled cylindrical storage tanks to mitigate seismic vibration

This study investigates the mitigation of excessive vibrations in two adjacent elevated storage tanks exposed to sequential nonstationary seismic excitations with time-varying frequency content. The coupling between the adjacent tanks is achieved through a sky-bridge structure that acts as a nonlinear mechanism, which is considered as a system comprising two nonlinear springs, two linear viscous dashpots, and an attached mass element, collectively referred to as a nonlinear energy sink (NES) mechanism. To describe the vibrational response, each tank is formulated using an equivalent multi-degree-of-freedom representation. A parametric analysis is conducted to investigate how the main NES parameters affect the dynamic response of coupled tanks under excitation input. Numerical simulations are performed using a mathematical model of earthquake ground motions consisting of two frequency-varying sequences as representative dynamic inputs. A sensitivity analysis of the mass ratios, nonlinear stiffness, and damping elements is carried out to determine their suitable values to achieve significant attenuation of excessive vibrations. The vibration suppression performance of the NES is investigated and quantitatively compared with that of a tuned mass damper (TMD) absorber. Subsequently, particle swarm optimization (PSO) is applied using a defined objective function to select the optimal NES parameters to improve vibration mitigation. Findings reveal that the connector structural element significantly improves the dynamic performance of the entire system. Accordingly, this configuration provides structural benefits, and reduces seismic responses more effectively than the uncontrolled case.

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Publication Details

Journal
Discover Civil Engineering
Published
2026-09-05
DOI
https://doi.org/10.1007/s44290-026-00603-x
Primary Topic
Vibration Control and Rheological Fluids
Type
article
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article

Leveraging skybridge in coupled cylindrical storage tanks to mitigate seismic vibration

A.M. Ngounou, Dorota Youmbi Fouego, Ahoudou Ngamie Ndoukouo, Buris Peggy Ndemanou et al.
Discover Civil Engineering
Vibration Control and Rheological Fluids
article

Leveraging skybridge in coupled cylindrical storage tanks to mitigate seismic vibration

A.M. Ngounou, Dorota Youmbi Fouego, Ahoudou Ngamie Ndoukouo, Buris Peggy Ndemanou, Alain Francis Talla, Daniel Cassidi Bitang A Ziem
article en

Abstract

This study investigates the mitigation of excessive vibrations in two adjacent elevated storage tanks exposed to sequential nonstationary seismic excitations with time-varying frequency content. The coupling between the adjacent tanks is achieved through a sky-bridge structure that acts as a nonlinear mechanism, which is considered as a system comprising two nonlinear springs, two linear viscous dashpots, and an attached mass element, collectively referred to as a nonlinear energy sink (NES) mechanism. To describe the vibrational response, each tank is formulated using an equivalent multi-degree-of-freedom representation. A parametric analysis is conducted to investigate how the main NES parameters affect the dynamic response of coupled tanks under excitation input. Numerical simulations are performed using a mathematical model of earthquake ground motions consisting of two frequency-varying sequences as representative dynamic inputs. A sensitivity analysis of the mass ratios, nonlinear stiffness, and damping elements is carried out to determine their suitable values to achieve significant attenuation of excessive vibrations. The vibration suppression performance of the NES is investigated and quantitatively compared with that of a tuned mass damper (TMD) absorber. Subsequently, particle swarm optimization (PSO) is applied using a defined objective function to select the optimal NES parameters to improve vibration mitigation. Findings reveal that the connector structural element significantly improves the dynamic performance of the entire system. Accordingly, this configuration provides structural benefits, and reduces seismic responses more effectively than the uncontrolled case.

Discover Civil EngineeringVol. 3(1)
African Institute for Mathematical Sciences (ZA), University of Petroleum (ID), Department of Commerce (AU), National Advanced School of Public Works (CM), Higher Institute of Applied Arts (EG)
Openalex Percentile: Top 16%
Vibration Control and Rheological Fluids
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