Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical Coupling

The research on the mechanical characteristics of concrete-filled steel tubular composite frame under high temperature fire environment is one of the research hotspots. In this paper, the finite element simulation software is used to analyze the concrete-filled steel tubular composite frame structur...

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Main Authors: LI Yucheng, WANG Wei, WANG Xing
Format: Article
Language:English
Published: EDP Sciences 2021-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/09/e3sconf_iaecst20_03022.pdf
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spelling doaj-225323219069407fae24f69c6eb8c1de2021-02-01T08:06:23ZengEDP SciencesE3S Web of Conferences2267-12422021-01-012330302210.1051/e3sconf/202123303022e3sconf_iaecst20_03022Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical CouplingLI Yucheng0WANG Wei1WANG Xing2School of mechanical engineering, anhui sanlian universitySchool of mechanical engineering, anhui sanlian universitySchool of mechanical engineering, anhui sanlian universityThe research on the mechanical characteristics of concrete-filled steel tubular composite frame under high temperature fire environment is one of the research hotspots. In this paper, the finite element simulation software is used to analyze the concrete-filled steel tubular composite frame structure. The failure mode of the flexural deformation of the composite frame structure under high temperature fire environment is introduced. The simulation results of the deformation and displacement of the single-layer single span and two-layer two-span composite frame structure are deeply studied, including the different temperature field, structural field, structural field of each beam and column The results show that: with the temperature rising, the horizontal plastic strain, vertical displacement and local plastic region of beam and column are redistributed and changed in high temperature fire environment, and the flexural effect of two-story two-span concrete-filled steel tubular composite frame under different fire positions is analyzed. The results show that: with the temperature rising, the horizontal plastic strain at the concentrated load is not the results show that the deflection and deformation redistribution are obvious, and the deflection and deformation redistribution are obvious at the joint points of beams and columns. Finally, a mechanism is formed and destroyed. The flexure effect of mode 1 is larger than that of condition 2, which indicates that the flexural effect of two-story two span CFST composite frame under full cross-section fire is larger than that of condition 2 It should be better. The research results can provide reference value for the reinforcement and repair of CFST composite frame under high temperature fire.https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/09/e3sconf_iaecst20_03022.pdf
collection DOAJ
language English
format Article
sources DOAJ
author LI Yucheng
WANG Wei
WANG Xing
spellingShingle LI Yucheng
WANG Wei
WANG Xing
Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical Coupling
E3S Web of Conferences
author_facet LI Yucheng
WANG Wei
WANG Xing
author_sort LI Yucheng
title Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical Coupling
title_short Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical Coupling
title_full Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical Coupling
title_fullStr Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical Coupling
title_full_unstemmed Research on the Mechanical Characteristics of H-section Steel Frame under the Action of Thermo Mechanical Coupling
title_sort research on the mechanical characteristics of h-section steel frame under the action of thermo mechanical coupling
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2021-01-01
description The research on the mechanical characteristics of concrete-filled steel tubular composite frame under high temperature fire environment is one of the research hotspots. In this paper, the finite element simulation software is used to analyze the concrete-filled steel tubular composite frame structure. The failure mode of the flexural deformation of the composite frame structure under high temperature fire environment is introduced. The simulation results of the deformation and displacement of the single-layer single span and two-layer two-span composite frame structure are deeply studied, including the different temperature field, structural field, structural field of each beam and column The results show that: with the temperature rising, the horizontal plastic strain, vertical displacement and local plastic region of beam and column are redistributed and changed in high temperature fire environment, and the flexural effect of two-story two-span concrete-filled steel tubular composite frame under different fire positions is analyzed. The results show that: with the temperature rising, the horizontal plastic strain at the concentrated load is not the results show that the deflection and deformation redistribution are obvious, and the deflection and deformation redistribution are obvious at the joint points of beams and columns. Finally, a mechanism is formed and destroyed. The flexure effect of mode 1 is larger than that of condition 2, which indicates that the flexural effect of two-story two span CFST composite frame under full cross-section fire is larger than that of condition 2 It should be better. The research results can provide reference value for the reinforcement and repair of CFST composite frame under high temperature fire.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2021/09/e3sconf_iaecst20_03022.pdf
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AT wangxing researchonthemechanicalcharacteristicsofhsectionsteelframeundertheactionofthermomechanicalcoupling
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