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February 21, 2026Procedia Structural Integrity0 citationsOpen Access

Testing and modelling a full-scale historic masonry vault under seismic loads

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MZMattia ZiziMNMohammad Javad Azari NezhadianCCCorrado Chisari

Key Points

  • This research aims to investigate the seismic behavior of masonry cross vaults in historic structures to understand their vulnerabilities.
  • Design and construction of a full-scale masonry vault prototype based on historical designs.
  • Conduct laboratory tests applying horizontal displacements to evaluate vault behavior under seismic loads.
  • Perform material characterization tests to define geometry and material properties of the vault.
  • Establish boundary conditions and assumptions for the test setup to simulate actual constraints.
  • Develop a preliminary Finite Element model to predict structural responses.
  • The study identifies the complex behavior of masonry vaults under seismic loads.
  • Initial findings suggest significant vulnerabilities, particularly under horizontal displacements.
  • The Finite Element model aims to accurately predict structural responses, indicating expected strength.

Abstract

Masonry cross vaults in historic churches represent structurally significant yet highly vulnerable elements under seismic loading, due to their complex geometry and limited capacity to accommodate horizontal displacements. This study presents the design process of an experimental investigation into the diaphragmatic behavior of such vaults when subjected to seismic actions. Taking inspiration from the transept vaults of the medieval Church of San Michele Arcangelo in Casertavecchia (Caserta, Italy), a full-scale prototype will be constructed for laboratory testing, involving horizontal displacements applied to one of its base sides. This paper first describes the construction process of the specimen, including the definition of its geometry and the results of material characterization tests. This is followed by a detailed account of the test setup, with particular attention to the boundary conditions and the assumptions made to simulate in-situ constraints. Finally, a preliminary Finite Element model of the experiment is introduced, aimed at predicting the structural response and evaluating the expected strength.

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Cite This Study

Zizi et al. (2026) studied this question.

synapsesocial.com/papers/69994aab873532290d01f0e2https://doi.org/10.1016/j.prostr.2025.12.219
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