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Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt

The steel–plastic compound geogrid has been widely used as a new reinforcement material in geotechnical engineering and other fields. Therefore, it is essential to fully understand the mechanical properties of steel–plastic compound geogrid-reinforced belts to utilize steel–plastic compound geogrids...

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Autores principales: Wang, Qingbiao, Li, Yue, Song, Hongxu, Duan, Jianing, Hu, Zhongjing, Wang, Fuqiang, Xu, Haolin, Liu, Zhengyin, Zhang, Mingjing, Wang, Liming, Wu, Yeming, Shi, Zhenyue
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8541536/
https://www.ncbi.nlm.nih.gov/pubmed/34683552
http://dx.doi.org/10.3390/ma14205963
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author Wang, Qingbiao
Li, Yue
Song, Hongxu
Duan, Jianing
Hu, Zhongjing
Wang, Fuqiang
Xu, Haolin
Liu, Zhengyin
Zhang, Mingjing
Wang, Liming
Wu, Yeming
Shi, Zhenyue
author_facet Wang, Qingbiao
Li, Yue
Song, Hongxu
Duan, Jianing
Hu, Zhongjing
Wang, Fuqiang
Xu, Haolin
Liu, Zhengyin
Zhang, Mingjing
Wang, Liming
Wu, Yeming
Shi, Zhenyue
author_sort Wang, Qingbiao
collection PubMed
description The steel–plastic compound geogrid has been widely used as a new reinforcement material in geotechnical engineering and other fields. Therefore, it is essential to fully understand the mechanical properties of steel–plastic compound geogrid-reinforced belts to utilize steel–plastic compound geogrids efficiently. In this study, tensile mechanical tests of steel wire, polyethylene geogrid belt, and steel–plastic compound geogrid-reinforced belt were conducted with respect to the tensile mechanical properties of steel–plastic compound geogrid-reinforced belts. In addition, the minimum reinforcement and optimal reinforcement ratios of steel–plastic compound geogrid-reinforced belts were summarized. The results showed that the steel–plastic compound geogrid-reinforced belts possessed an incongruent force of the internal steel wire during the tensile process. The tensile stress–strain curve of the steel–plastic compound geogrid-reinforced belt can be divided into the composite adjustment, steel wire breaking, and residual deformation stages. The tensile strength of the steel–plastic compound geogrid-reinforced belt is proportional to the diameter and number of steel wires in the reinforced belt. The minimum and optimum reinforcement ratios of steel wire in the steel–plastic compound geogrid-reinforced belt were 0.63% and 11.92%, respectively.
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spelling pubmed-85415362021-10-24 Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt Wang, Qingbiao Li, Yue Song, Hongxu Duan, Jianing Hu, Zhongjing Wang, Fuqiang Xu, Haolin Liu, Zhengyin Zhang, Mingjing Wang, Liming Wu, Yeming Shi, Zhenyue Materials (Basel) Article The steel–plastic compound geogrid has been widely used as a new reinforcement material in geotechnical engineering and other fields. Therefore, it is essential to fully understand the mechanical properties of steel–plastic compound geogrid-reinforced belts to utilize steel–plastic compound geogrids efficiently. In this study, tensile mechanical tests of steel wire, polyethylene geogrid belt, and steel–plastic compound geogrid-reinforced belt were conducted with respect to the tensile mechanical properties of steel–plastic compound geogrid-reinforced belts. In addition, the minimum reinforcement and optimal reinforcement ratios of steel–plastic compound geogrid-reinforced belts were summarized. The results showed that the steel–plastic compound geogrid-reinforced belts possessed an incongruent force of the internal steel wire during the tensile process. The tensile stress–strain curve of the steel–plastic compound geogrid-reinforced belt can be divided into the composite adjustment, steel wire breaking, and residual deformation stages. The tensile strength of the steel–plastic compound geogrid-reinforced belt is proportional to the diameter and number of steel wires in the reinforced belt. The minimum and optimum reinforcement ratios of steel wire in the steel–plastic compound geogrid-reinforced belt were 0.63% and 11.92%, respectively. MDPI 2021-10-11 /pmc/articles/PMC8541536/ /pubmed/34683552 http://dx.doi.org/10.3390/ma14205963 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Qingbiao
Li, Yue
Song, Hongxu
Duan, Jianing
Hu, Zhongjing
Wang, Fuqiang
Xu, Haolin
Liu, Zhengyin
Zhang, Mingjing
Wang, Liming
Wu, Yeming
Shi, Zhenyue
Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt
title Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt
title_full Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt
title_fullStr Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt
title_full_unstemmed Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt
title_short Experimental Study on Tensile Mechanical Properties and Reinforcement Ratio of Steel–Plastic Compound Geogrid-Reinforced Belt
title_sort experimental study on tensile mechanical properties and reinforcement ratio of steel–plastic compound geogrid-reinforced belt
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8541536/
https://www.ncbi.nlm.nih.gov/pubmed/34683552
http://dx.doi.org/10.3390/ma14205963
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