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Damage Detection on Steel Truss Bridges Using Modal Based Methods Cover

Damage Detection on Steel Truss Bridges Using Modal Based Methods

Open Access
|Apr 2026

Abstract

The structural integrity of bridges is vital for ensuring the safety of road users, particularly under heavy traffic loads from large vehicles. Traditionally, bridge performance has been assessed through visual inspection techniques. However, these methods are highly dependent on the inspector’s experience and may overlook early signs of structural deterioration. Structural Health Monitoring Systems (SHMS) have emerged as important tools in assessing the dynamic behaviour of structures, particularly in complex systems such as steel truss bridges. Numerous studies highlight the challenges and advances in damage detection using techniques like mode shape curvature and frequency response functions. This study aims to compare four vibration-based damage detection methodologies through numerical analysis and experimental testing on a laboratory-scale steel truss bridge model. By examining mode shape changes due to artificial damage scenarios, the research seeks to establish a reliable and efficient damage detection approach for structural safety assessment. We propose Mode Shape Curvature (MSC) as reliable and effective method for identifying damage locations in steel truss bridge structures.

DOI: https://doi.org/10.2478/cee-2026-0093 | Journal eISSN: 2199-6512 (formerly 1336-5835) | Journal ISSN: 1336-5835
Language: English
Submitted on: Oct 27, 2025
Accepted on: Feb 25, 2026
Published on: Apr 21, 2026
Published by: University of Žilina
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2026 Dita Kamarul Fitriyah, Budi Suswanto, Heppy Kristijanto, Ahmad Basshofi Habieb, Djoko Irawan, published by University of Žilina
This work is licensed under the Creative Commons Attribution 4.0 License.