Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear Walls

Precast construction technologies have several advantages in industrialized production, such as quality control and energy conservation. However, the joint interface slippage between the precast components causes detrimental effect on the mechanical properties, such as dowel shear stress on the conn...

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Main Authors: Wei Chen, Qing Wu, Dongyue Wu, Longji Dang, Feifei Jiang
Format: Article
Language:English
Published: Wiley 2020-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2020/3784271
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author Wei Chen
Qing Wu
Dongyue Wu
Longji Dang
Feifei Jiang
author_facet Wei Chen
Qing Wu
Dongyue Wu
Longji Dang
Feifei Jiang
author_sort Wei Chen
collection DOAJ
description Precast construction technologies have several advantages in industrialized production, such as quality control and energy conservation. However, the joint interface slippage between the precast components causes detrimental effect on the mechanical properties, such as dowel shear stress on the connecting steel bars, which strictly restricts the development of assembly technology in aseismic structure. In order to eliminate the horizontal slippage along the assemble joint and optimize the mechanical performance of horizontal joint connections, a new reinforced tenon joint precast shear wall is proposed in this paper. Finite element numerical simulations are conducted on three reinforced tenon joint specimens and a reference specimen to understand the mechanical properties of the reinforced tenon and boundary confinement components of shear wall. The load-displacement curves, the equivalent plastic strain distribution diagram, and the concrete damage distribution diagram are obtained. It is found that the boundary components provide bending strength and the reinforced tenon can reduce the harmful influence of dowel-action shear stress on longitudinal connecting reinforcements. Therefore, the bending and shearing forces are separated at the joint interface. Based on the numerical simulation results and the calculation theory of normal section bearing capacity, the theoretical calculation bending capacity formula of reinforced tenon precast shear wall is established. The obtained calculation results are in good agreement with the simulation results and can accurately reflect the bending capacity of the jointed interface.
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institution Kabale University
issn 1687-8086
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language English
publishDate 2020-01-01
publisher Wiley
record_format Article
series Advances in Civil Engineering
spelling doaj-art-5eb0b04221f7402ca287028966d5678f2025-02-03T06:47:00ZengWileyAdvances in Civil Engineering1687-80861687-80942020-01-01202010.1155/2020/37842713784271Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear WallsWei Chen0Qing Wu1Dongyue Wu2Longji Dang3Feifei Jiang4School of Civil Engineering and Architecture, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu, ChinaSchool of Civil Engineering and Architecture, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu, ChinaSchool of Civil Engineering and Architecture, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu, ChinaSchool of Civil Engineering, Southeast University, Nanjing, Jiangsu, ChinaSchool of Civil Engineering and Architecture, Jiangsu University of Science and Technology, Zhenjiang, Jiangsu, ChinaPrecast construction technologies have several advantages in industrialized production, such as quality control and energy conservation. However, the joint interface slippage between the precast components causes detrimental effect on the mechanical properties, such as dowel shear stress on the connecting steel bars, which strictly restricts the development of assembly technology in aseismic structure. In order to eliminate the horizontal slippage along the assemble joint and optimize the mechanical performance of horizontal joint connections, a new reinforced tenon joint precast shear wall is proposed in this paper. Finite element numerical simulations are conducted on three reinforced tenon joint specimens and a reference specimen to understand the mechanical properties of the reinforced tenon and boundary confinement components of shear wall. The load-displacement curves, the equivalent plastic strain distribution diagram, and the concrete damage distribution diagram are obtained. It is found that the boundary components provide bending strength and the reinforced tenon can reduce the harmful influence of dowel-action shear stress on longitudinal connecting reinforcements. Therefore, the bending and shearing forces are separated at the joint interface. Based on the numerical simulation results and the calculation theory of normal section bearing capacity, the theoretical calculation bending capacity formula of reinforced tenon precast shear wall is established. The obtained calculation results are in good agreement with the simulation results and can accurately reflect the bending capacity of the jointed interface.http://dx.doi.org/10.1155/2020/3784271
spellingShingle Wei Chen
Qing Wu
Dongyue Wu
Longji Dang
Feifei Jiang
Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear Walls
Advances in Civil Engineering
title Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear Walls
title_full Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear Walls
title_fullStr Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear Walls
title_full_unstemmed Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear Walls
title_short Numerical Theoretical Study on Mechanical Properties of New Reinforced Tenon Precast Shear Walls
title_sort numerical theoretical study on mechanical properties of new reinforced tenon precast shear walls
url http://dx.doi.org/10.1155/2020/3784271
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AT dongyuewu numericaltheoreticalstudyonmechanicalpropertiesofnewreinforcedtenonprecastshearwalls
AT longjidang numericaltheoreticalstudyonmechanicalpropertiesofnewreinforcedtenonprecastshearwalls
AT feifeijiang numericaltheoreticalstudyonmechanicalpropertiesofnewreinforcedtenonprecastshearwalls