Analytical model of deformation of reinforced concrete columns based on fracture mechanics
- Authors: Tamrazyan A.G.1, Chernik V.I.1, Matseevich T.A.1, Manaenkov I.K.1
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Affiliations:
- National Research Moscow State University of Civil Engineering
- Issue: Vol 18, No 6 (2022): Scientific Legacy of Academician Vitaly Mikhailovich Bondarenko
- Pages: 573-583
- Section: Analysis and design of building structures
- URL: https://journals.rcsi.science/1815-5235/article/view/325775
- DOI: https://doi.org/10.22363/1815-5235-2022-18-6-573-583
- ID: 325775
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Abstract
When conducting seismic calculations of reinforced concrete buildings and structures, it is quite important to use nonlinear models of structural performance, including those taking into account the overcritical operation in the fracture stage. The application of such models is especially important if the structures have an initial damage from fire or corrosion, as well as mechanical damage caused by force factors. The purpose of this study is to develop an analytical model of the deformation of eccentrically compressed reinforced concrete columns considering the stage of failure, which includes such processes as spelling of the protective layer, loss of stability of compressed reinforcement, and softening of confined concrete after reaching the design resistance. The existing models describing hysteresis behavior of reinforced concrete structures under low-cycle loading have been reviewed. The models have been analyzed in terms of considering the defining monotone curves, which are the boundaries of cyclic deformation. The model proposed in the research is constructed by analyzing the stages of the stress-strain state of a reinforced concrete column. At each stage, formulas are found for determining moment and curvature by solving equations of equilibrium of internal forces. Calculations based on the obtained model for a particular reinforced concrete column are carried out, monotonous diagrams are obtained, and a conclusion about the significant influence of the level of axial load on the character of deformation is made. On the basis of the obtained model, the construction of hysteresis diagrams under low-cycle loading is expected in the future.
About the authors
Ashot G. Tamrazyan
National Research Moscow State University of Civil Engineering
Author for correspondence.
Email: tamrazian@mail.ru
ORCID iD: 0000-0003-0569-4788
Doctor of Technical Sciences, Professor, Head of the Department of Reinforced Concrete and Stone Structures
26 Yaroslavskoye Shosse, Moscow, 129337, Russian FederationVladimir I. Chernik
National Research Moscow State University of Civil Engineering
Email: chernik_vi@mail.ru
ORCID iD: 0000-0001-6240-9993
postgraduate, lecturer, Department of Reinforced Concrete and Stone Structures
26 Yaroslavskoye Shosse, Moscow, 129337, Russian FederationTatiana A. Matseevich
National Research Moscow State University of Civil Engineering
Email: MatseevichTA@mgsu.ru
ORCID iD: 0000-0001-6292-0759
Doctor of Physical and Mathematical Sciences, Associate Professor, Head of the Department of Applied Mathematics
26 Yaroslavskoye Shosse, Moscow, 129337, Russian FederationIvan K. Manaenkov
National Research Moscow State University of Civil Engineering
Email: ivanadekvatniy@mail.ru
ORCID iD: 0000-0002-5260-8793
Candidate of Technical Sciences, Associate Professor of the Department of Reinforced Concrete and Stone Structures
26 Yaroslavskoye Shosse, Moscow, 129337, Russian FederationReferences
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