In the framework of ongoing research on seismic metamaterials, this study investigates a novel locally resonant periodic foundation for the base isolation of masonry structures. The foundation consists of a periodic assembly of vertically stacked steel cells of circular shape, interconnected by circular steel-laminated elastomeric bearings. Each steel cell comprises a hollow cylinder welded to top and bottom plates and connected, through a rubber ring, to a steel ring that acts as a resonant unit oscillating in the horizontal plane. A simplified mass-spring model, formulated in dimensionless form, is used to perform elastic wave propagation analysis and predict the effectiveness of the foundation when installed at the base of a masonry structure, providing information for preliminary design. Subsequently, for proof of concept under real earthquake ground motions, a detailed 3D finite element model of a full scale benchmark masonry structure base-isolated by an array of foundations is developed. Numerical analyses of the 3D finite element model confirm the predictions of the simplified mass-spring model and demonstrate that the foundations can attenuate the effects of earthquake ground motion by inducing relevant attenuation zones in the low-frequency response of the masonry structure, with better performances than classical elastomeric isolators in most of the examined cases. Notably, the effectiveness is not limited to the low-frequency range but extends to much higher frequencies, which may be of interest for mitigating the effects of railway or road traffic.

On a novel concept of locally resonant periodic foundation / Failla, G., Cartone, L., Alotta, G., Lo Iacono, F., Russillo Andrea, F.. - In: MECHANICS RESEARCH COMMUNICATIONS. - ISSN 0093-6413. - 155:(2026), p. 104701. [10.1016/j.mechrescom.2026.104701]

On a novel concept of locally resonant periodic foundation

Failla Giuseppe
;
Cartone Luigi;Alotta Gioacchino;
2026-01-01

Abstract

In the framework of ongoing research on seismic metamaterials, this study investigates a novel locally resonant periodic foundation for the base isolation of masonry structures. The foundation consists of a periodic assembly of vertically stacked steel cells of circular shape, interconnected by circular steel-laminated elastomeric bearings. Each steel cell comprises a hollow cylinder welded to top and bottom plates and connected, through a rubber ring, to a steel ring that acts as a resonant unit oscillating in the horizontal plane. A simplified mass-spring model, formulated in dimensionless form, is used to perform elastic wave propagation analysis and predict the effectiveness of the foundation when installed at the base of a masonry structure, providing information for preliminary design. Subsequently, for proof of concept under real earthquake ground motions, a detailed 3D finite element model of a full scale benchmark masonry structure base-isolated by an array of foundations is developed. Numerical analyses of the 3D finite element model confirm the predictions of the simplified mass-spring model and demonstrate that the foundations can attenuate the effects of earthquake ground motion by inducing relevant attenuation zones in the low-frequency response of the masonry structure, with better performances than classical elastomeric isolators in most of the examined cases. Notably, the effectiveness is not limited to the low-frequency range but extends to much higher frequencies, which may be of interest for mitigating the effects of railway or road traffic.
2026
10-apr-2026
Inglese
155
104701
16
https://www.sciencedirect.com/science/article/pii/S0093641326000911
Esperti anonimi
Seismic metamaterial, Locally resonant periodic foundation, Bandgap, Seismic isolation, Masonry structure
Internazionale
Failla, Giuseppe; Cartone, Luigi; Alotta, Gioacchino; Lo Iacono, Francesco; Russillo Andrea, Francesco
info:eu-repo/semantics/article
1 Contributo su Rivista::1.1 Articolo in rivista
262
On a novel concept of locally resonant periodic foundation / Failla, G., Cartone, L., Alotta, G., Lo Iacono, F., Russillo Andrea, F.. - In: MECHANICS RESEARCH COMMUNICATIONS. - ISSN 0093-6413. - 155:(2026), p. 104701. [10.1016/j.mechrescom.2026.104701]
5
none
File in questo prodotto:
Non ci sono file associati a questo prodotto.

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.12318/167326
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 0
  • ???jsp.display-item.citation.isi??? 0
social impact