Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DIC

To obtain the failure evolution law, a pullout test model of the anchor system is proposed based on the digital image correlation (DIC) measurements. By the study of the displacement field, the strain field, and the force transfer law of the anchor system under the pulling load, the failure law of t...

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Main Authors: Yue Li, Chongming Gao, Qian Li, Qiqi Wu, Wenjun Meng
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2020/6640687
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spelling doaj-36d5c09a380c4c34abbf80721166769d2021-01-11T02:21:34ZengHindawi LimitedAdvances in Civil Engineering1687-80942020-01-01202010.1155/2020/6640687Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DICYue Li0Chongming Gao1Qian Li2Qiqi Wu3Wenjun Meng4School of Civil EngineeringSchool of Civil EngineeringResearch Institute of Highway Ministry of TransportSchool of Civil EngineeringSchool of Civil EngineeringTo obtain the failure evolution law, a pullout test model of the anchor system is proposed based on the digital image correlation (DIC) measurements. By the study of the displacement field, the strain field, and the force transfer law of the anchor system under the pulling load, the failure law of the anchor system is revealed. The results show that (1) the failure mode and the ultimate bearing capacity of the anchor system are related to the thickness of the anchor agent; (2) in the anchor system, the pulling force is gradually transferred from the loading end to the free end along the steel bar, and the greater the thickness of the anchoring agent, the deeper the transfer range; (3) during the loading, the deformation of the anchoring system is mainly concentrated at the interface between the anchoring agent and the concrete and expands to the depth along the steel bar; and (4) the failure evolution rate of the anchorage system is related to the loading stage. The failure evolution of the anchor system can be divided into the elastic phase, the plastic phase, and the deformation rebound phase.http://dx.doi.org/10.1155/2020/6640687
collection DOAJ
language English
format Article
sources DOAJ
author Yue Li
Chongming Gao
Qian Li
Qiqi Wu
Wenjun Meng
spellingShingle Yue Li
Chongming Gao
Qian Li
Qiqi Wu
Wenjun Meng
Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DIC
Advances in Civil Engineering
author_facet Yue Li
Chongming Gao
Qian Li
Qiqi Wu
Wenjun Meng
author_sort Yue Li
title Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DIC
title_short Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DIC
title_full Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DIC
title_fullStr Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DIC
title_full_unstemmed Failure Evolution Law of Reinforced Anchor System under Pullout Load Based on DIC
title_sort failure evolution law of reinforced anchor system under pullout load based on dic
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8094
publishDate 2020-01-01
description To obtain the failure evolution law, a pullout test model of the anchor system is proposed based on the digital image correlation (DIC) measurements. By the study of the displacement field, the strain field, and the force transfer law of the anchor system under the pulling load, the failure law of the anchor system is revealed. The results show that (1) the failure mode and the ultimate bearing capacity of the anchor system are related to the thickness of the anchor agent; (2) in the anchor system, the pulling force is gradually transferred from the loading end to the free end along the steel bar, and the greater the thickness of the anchoring agent, the deeper the transfer range; (3) during the loading, the deformation of the anchoring system is mainly concentrated at the interface between the anchoring agent and the concrete and expands to the depth along the steel bar; and (4) the failure evolution rate of the anchorage system is related to the loading stage. The failure evolution of the anchor system can be divided into the elastic phase, the plastic phase, and the deformation rebound phase.
url http://dx.doi.org/10.1155/2020/6640687
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AT qianli failureevolutionlawofreinforcedanchorsystemunderpulloutloadbasedondic
AT qiqiwu failureevolutionlawofreinforcedanchorsystemunderpulloutloadbasedondic
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