4.7 Article

Analytical fault tree and diagnostic aids for the preservation of historical steel truss bridges

期刊

ENGINEERING FAILURE ANALYSIS
卷 133, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.engfailanal.2021.105996

关键词

Historical steel bridges; Diagnostic; Fault tree; Fault scenarios; Fatigue; On-site tests; Models calibration

资金

  1. Generalitat Valenciana Conselleria de Innovacion, Universidades, Ciencia y Sociedad Digital through the European Social Fund (FSE) for Regional Development
  2. Industrial PhD research program (PON-RI 2014-2020) - Italian Ministry of Universities and Research [DOT130UZWT]

向作者/读者索取更多资源

The preservation of historical steel bridges is crucial for maintaining cultural heritage and performance. Fault Trees can serve as a useful tool for identifying and implementing maintenance and conservation strategies.
Historical steel bridges represent an important construction typology integrating the constructive heritage of the past century that needs to be preserved. Exposure to fatigue phenomenon, aging, improper design or execution, extreme events, and other aggressive environmental agents can seriously compromise the conservation and performance of these structures as some recent catastrophic collapses have shown (Mississippi River bridge, Minneapolis, Minnesota 2007; Kinzua Bridge State Park, Pennsylvania 2003). In this context, the diagnostic of historical steel bridges becomes of basic importance to identify and implement maintenance, monitoring and conservation strategies. Fault Trees are useful tools for practitioners that provide a complete overview of possible failures. In the related literature, this instrument is mainly applied with approaches that are based on previous experience or failures detected in similar structures, and so the Fault Tree can only provide qualitative support. This paper proposes a new method to achieve an Analytical Bridge Fault Tree linking the technician's experience and the numerical simulations of different fault scenarios. The latter are achieved by a numerical model able to consider fatigue failure and different concurring causes in the analysis (e.g., and aggressive phenomena, corrosion, defects, lack of maintenance). The proposed approach was applied to a historical railway steel truss bridge located in the East of Spain (Valencia Region) in order to show its applicability and potential.

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