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October 2, 2025Applied Sciences3 citationsOpen Access

A Comprehensive Experimental Study on the Dynamic Identification of Historical Three-Arch Masonry Bridges Using Operational Modal Analysis

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CCCristiano Giuseppe CovielloMSMaria Francesca Sabbà

Key Points

  • Dynamic characteristics were accurately characterized using operational modal analysis in historical masonry bridges, showing reliable outcomes.
  • Four masonry bridges spanning almost two millennia were studied, establishing a strong foundational dataset for seismic assessment.
  • Non-invasive excitation methods enhanced data quality, with effective preservation of heritage structures emphasized during the study.
  • A predictive equation was formulated, aiding in the identification of natural frequency based on geometric characteristics.

Abstract

This article presents an extensive experimental investigation of the dynamic characteristics of three-arch historical masonry bridges, using Operational Modal Analysis (OMA). The research thoroughly characterizes the dynamic behavior of four representative masonry bridges from the Apulia Region in Southern Italy through detailed experimental campaigns. These campaigns employed calibrated and optimally implemented accelerometric monitoring systems to acquire high-quality dynamic data under controlled excitation and environmental conditions. The selected bridges include the Santa Teresa Bridge in Bitonto, the Roman Bridge in Bovino, the Roman Bridge in Ascoli Satriano and a moderner road bridge on the Provincial Road SP123 in Troia; they span almost two millennia of construction history. The experimental framework incorporated several non-invasive excitation methods, including controlled vehicle passes, instrumented hammer impacts and ambient vibration tests, strategically chosen for optimal signal quality and heritage preservation. This investigation demonstrates the feasibility of capturing the dynamic behavior of these complex and specific historic structures through customized sensor configurations and various excitation methods. The resulting natural frequencies and mode shapes are accurate, robust, and reliable considering the extended data set used, and have allowed a rigorous seismic assessment. Eventually, this comprehensive data set establishes a fundamental basis for understanding and predicting the seismic response of several three-span masonry bridges to accurately identify their long-term resilience and effective conservation planning of these valuable and vulnerable heritage structures. In conclusion, the data comparison enabled the formulation of a predictive equation for the identification of the first natural frequency of bridges from geometric characteristics.

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Cite This Study

Coviello et al. (2025) studied this question.

synapsesocial.com/papers/68de79595b556a9128e1a348https://doi.org/10.3390/app151910577
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