Stability exposure of building structural systems under environmental damage
- Authors: Savin S.Y.1, Fedorova N.V.1
-
Affiliations:
- National Research Moscow State University of Civil Engineering
- Issue: Vol 18, No 6 (2022): Scientific Legacy of Academician Vitaly Mikhailovich Bondarenko
- Pages: 564-572
- Section: Analysis and design of building structures
- URL: https://journals.rcsi.science/1815-5235/article/view/325774
- DOI: https://doi.org/10.22363/1815-5235-2022-18-6-564-572
- ID: 325774
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Abstract
Environmental impacts on reinforced concrete structures may cause a decrease of in resource of their robustness under design and unforeseen actions. The research in this field mainly focusses on investigation of the behavior of bending elements as eccentrically compressed and damaged by corrosion reinforced concrete elements such as columns require more intensive investigation. Thus, the study has the purpose to assess the influence of the depth of corrosion on the bearing capacity of eccentrically compressed reinforced concrete columns of building frames, as well as to evaluate the time for exhaustion of load capacity. The phenomenological model, which was proposed by V.M. Bon- darenko, has been adopted in order to account long-term processes of corrosion damage. The study established an increase in the depth of corrosion damage leads to a decrease in the bearing capacity of eccentrically compressed reinforced concrete columns since the effective cross-sectional depth decreases which makes column more flexible. The relative cross-sectional depth lost strength resistance resource due to corrosion varies depending on the current stress-strain state of the reinforced concrete column that is adaptation mechanism of the structure to long-term actions. The exposure of building structural systems under environmental damage depends significantly on the parameters of the action as well as the stress-strain state of the structural element. The paper established that it may differ by several times depending on avalanche or clogging damage scenario.
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About the authors
Sergey Yu. Savin
National Research Moscow State University of Civil Engineering
Author for correspondence.
Email: suwin@yandex.ru
ORCID iD: 0000-0002-6697-3388
Candidate of Technical Sciences, Associate Professor, Associate Professor of the Department of Reinforced Concrete and Masonry Structures
26 Yaroslavskoye Shosse, Moscow, 129337, Russian FederationNatalia V. Fedorova
National Research Moscow State University of Civil Engineering
Email: fedorovaNV@mgsu.ru
ORCID iD: 0000-0002-5392-9150
Doctor of Technical Sciences, Professor, Director of the branch of National Research Moscow State University of Civil Engineering in Mytishchi, Head of the Department of Architectural and Construction Design
26 Yaroslavskoye Shosse, Moscow, 129337, Russian FederationReferences
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