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Thermal monitoring of a concrete bridge in London, UK
Author(s) -
David T. Nepomuceno,
Graham Webb,
John Bennetts,
Theo Tryfonas,
Paul J. Vardanega
Publication year - 2022
Publication title -
proceedings of the institution of civil engineers. bridge engineering/proceedings of ice. bridge engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.401
H-Index - 38
eISSN - 1751-7664
pISSN - 1478-4637
DOI - 10.1680/jbren.20.00012
Subject(s) - structural engineering , deck , bridge (graph theory) , thermal , environmental science , engineering , meteorology , geography , medicine
During bridge design and assessment, effects of thermal actions are accounted for by means of a uniform temperature variation and temperature difference components. The uniform temperature variations cause changes in length and width of the structure, whereas the temperature difference components primarily cause curvatures and internal stresses. The effects of these strains on the superstructure depend on the structure's articulation and restraint. Design profiles used to model the temperature difference components vary between design codes, which can have a significant effect on the induced curvatures. Thermal data findings obtained from a comprehensive, year-long monitoring programme on Waterloo Bridge in London are examined, which allows comparison of these various models with performance data. The design thermal model in BS EN 1991-1-5 is examined, supplemented by the models from the Aashto and New Zealand codes. The measured uniform bridge temperature generally fell within the stipulated limits of BS EN 1991-1-5; however, at low temperatures the minimum deck temperature may be lower than the design relationship provided. The resultant moments implied from the measured vertical profiles: significantly exceed the worst-case values predicted by the UK model; exceed the Aashto model at different bridge sections; and do not exceed the New Zealand model.

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