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Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect

The dynamic loads acting on concrete-filled steel tubular members under axial impacts by rigid bodies were studied herein by FEM. The whole impact process was simulated and the time history of the impact load was obtained. The effects of eight factors on the axial impact load were studied; these fac...

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Autores principales: Lan, Tao, Qin, Guangchong, Zhuang, Jinzhao, Wang, Youdi, Zheng, Qian, Ding, Min
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6803852/
https://www.ncbi.nlm.nih.gov/pubmed/31561417
http://dx.doi.org/10.3390/ma12193134
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author Lan, Tao
Qin, Guangchong
Zhuang, Jinzhao
Wang, Youdi
Zheng, Qian
Ding, Min
author_facet Lan, Tao
Qin, Guangchong
Zhuang, Jinzhao
Wang, Youdi
Zheng, Qian
Ding, Min
author_sort Lan, Tao
collection PubMed
description The dynamic loads acting on concrete-filled steel tubular members under axial impacts by rigid bodies were studied herein by FEM. The whole impact process was simulated and the time history of the impact load was obtained. The effects of eight factors on the axial impact load were studied; these factors were the impact speed, mass ratio, axial pressure ratio, steel ratio, slenderness ratio, concrete strength, impact position, and boundary conditions. Besides this, the effects of concrete creep on the impact load were also considered by changing the material parameters of the concrete. The results show that axial impact load changes with time as a triangle. The peak value of impact load increases and the impact resistance improves with the growth of the axial pressure ratio, steel ratio, slenderness ratio, and concrete strength after creep occurs. As the eccentricity of the axial impact acting on a concrete-filled steel tubular member increases, the peak value of the impact load decreases. The enhancement of constraints at both ends of the member can improve the impact resistance. The creep reduction coefficients for the peak axial impact load of a concrete-filled steel tubular member under axial compression and considering the creep effect over 6 months and 30 years are 0.60 and 0.55, respectively. A calculation formula for the peak value of impact load was suggested based on the existing formula, and its accuracy was proved by finite element calculation in this study.
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spelling pubmed-68038522019-11-18 Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect Lan, Tao Qin, Guangchong Zhuang, Jinzhao Wang, Youdi Zheng, Qian Ding, Min Materials (Basel) Article The dynamic loads acting on concrete-filled steel tubular members under axial impacts by rigid bodies were studied herein by FEM. The whole impact process was simulated and the time history of the impact load was obtained. The effects of eight factors on the axial impact load were studied; these factors were the impact speed, mass ratio, axial pressure ratio, steel ratio, slenderness ratio, concrete strength, impact position, and boundary conditions. Besides this, the effects of concrete creep on the impact load were also considered by changing the material parameters of the concrete. The results show that axial impact load changes with time as a triangle. The peak value of impact load increases and the impact resistance improves with the growth of the axial pressure ratio, steel ratio, slenderness ratio, and concrete strength after creep occurs. As the eccentricity of the axial impact acting on a concrete-filled steel tubular member increases, the peak value of the impact load decreases. The enhancement of constraints at both ends of the member can improve the impact resistance. The creep reduction coefficients for the peak axial impact load of a concrete-filled steel tubular member under axial compression and considering the creep effect over 6 months and 30 years are 0.60 and 0.55, respectively. A calculation formula for the peak value of impact load was suggested based on the existing formula, and its accuracy was proved by finite element calculation in this study. MDPI 2019-09-26 /pmc/articles/PMC6803852/ /pubmed/31561417 http://dx.doi.org/10.3390/ma12193134 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lan, Tao
Qin, Guangchong
Zhuang, Jinzhao
Wang, Youdi
Zheng, Qian
Ding, Min
Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect
title Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect
title_full Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect
title_fullStr Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect
title_full_unstemmed Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect
title_short Axial Impact Load of a Concrete-Filled Steel Tubular Member with Axial Compression Considering the Creep Effect
title_sort axial impact load of a concrete-filled steel tubular member with axial compression considering the creep effect
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6803852/
https://www.ncbi.nlm.nih.gov/pubmed/31561417
http://dx.doi.org/10.3390/ma12193134
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