In this work, a simple and effective Rigid Beam Model originally introduced for studying the dynamic behaviour of ancient freestanding stone columns and recently extended to the case of cantilever unreinforced masonry walls subjected to out-of-plane loading, is further extended to simulate the out-of-plane behaviour of loadbearing façades. Such structural elements are characterized by the presence of at least one or two slabs and roofs, which transfer further vertical loads to the façade and represent additional masses that can be activated by ground acceleration. The proposed model assumes the wall vertically subdivided in equal portions modelled as rigid beam elements and each interface between portions is assumed as a node. Considering no sliding along the interfaces and small displacements of blocks, rocking can be simulated by a bi or tri-linear moment rotation non-linear constitutive law. Monolithic façades with different levels of additional mass on top are modelled and subjected to different in magnitude and frequency harmonic loading. From the analysis results, it is found that monolithic walls can overturn with acceleration magnitudes larger than their corresponding static load multipliers, if input frequency values increase. On the other hand, results converge to static load multipliers for decreasing input frequency values.

DYNAMIC ANALYSIS OF THE OUT-OF-PLANE BEHAVIOUR OF MASONRY FAÇADES USING RIGID BEAM MODEL

Baraldi, Daniele
;
Milani, Gabriele;
2025-01-01

Abstract

In this work, a simple and effective Rigid Beam Model originally introduced for studying the dynamic behaviour of ancient freestanding stone columns and recently extended to the case of cantilever unreinforced masonry walls subjected to out-of-plane loading, is further extended to simulate the out-of-plane behaviour of loadbearing façades. Such structural elements are characterized by the presence of at least one or two slabs and roofs, which transfer further vertical loads to the façade and represent additional masses that can be activated by ground acceleration. The proposed model assumes the wall vertically subdivided in equal portions modelled as rigid beam elements and each interface between portions is assumed as a node. Considering no sliding along the interfaces and small displacements of blocks, rocking can be simulated by a bi or tri-linear moment rotation non-linear constitutive law. Monolithic façades with different levels of additional mass on top are modelled and subjected to different in magnitude and frequency harmonic loading. From the analysis results, it is found that monolithic walls can overturn with acceleration magnitudes larger than their corresponding static load multipliers, if input frequency values increase. On the other hand, results converge to static load multipliers for decreasing input frequency values.
2025
Compdyn 2025 Proceedings
Inglese
1
9
9
Institute of Research & Development for Computational Methods in Engineering Sciences
GRECIA
COMPDYN 2025 - 10th International Conference on Computational Methods in Structural Dynamics and Earthquake Engineering
15-18 Giugno 2025
Isola di Rodi, Grecia
Internazionale
no
contributo
Comitato scientifico
https://2025.compdyn.org/proceedings/pdf/25702.pdf
masonry walls, out-of-plane collapse, Rigid Beam Model, dynamic analysis
reserved
info:eu-repo/semantics/conferenceObject
3
3. Contributo in atti di convegno (Proceedings)::3.1 Contributo in atti di convegno
Baraldi, Daniele; Milani, Gabriele; Sarhosis, Vasilis
273
   Multiscale and mUltidisciplinaRy Approach for hisTOrical centres ResIlience (MURATORI)
   MURATORI
   Ministero dell'Istruzione, dell'Università e della Ricerca
   P2022339JP
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11578/363329
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