Crack Propagation-Based Fatigue Life Prediction of Corroded RC Beams Considering Bond DegradationSource: Journal of Bridge Engineering:;2020:;Volume ( 025 ):;issue: 008Author:Zhongzhao Guo
,
Yafei Ma
,
Lei Wang
,
Xuhui Zhang
,
Jianren Zhang
,
Cody Hutchinson
,
Issam E. Harik
DOI: 10.1061/(ASCE)BE.1943-5592.0001592Publisher: ASCE
Abstract: Corrosion increases the nominal stress of reinforcing bars and accelerates the fatigue crack propagation. The stress redistribution induced by bond degradation between concrete and rebars makes the fatigue life prediction of reinforced concrete (RC) structures more complicated. This paper proposes a crack propagation-based fatigue life prediction method for corroded RC beams incorporating fatigue damage of concrete, fatigue bond degradation, and pitting corrosion. The fatigue damage of concrete is modeled based on plastic strain analysis. For the fatigue-worsened bond degradation between concrete and corroded rebars, a novel strain-incompatibility analysis method is developed to quantify the slip of reinforcements in concrete. The fatigue crack propagation parameters of rebars and the corrosion pit-induced stress concentration are experimentally obtained. The stress intensity for the fatigue crack at the corrosion pit root is calculated by an asymptotic interpolation method. Then, the fatigue failure analysis of corroded RC beams is performed, where the reinforcement fracture, concrete crush, and bond degradation-induced anchorage failure at beam ends are checked. The proposed method is verified by the test data. The effects of bond degradation and concrete damage on the fatigue life prediction are analyzed and discussed. The proposed method for fatigue life prediction gives a reasonable estimate of the service life of corroded RC beams.
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contributor author | Zhongzhao Guo | |
contributor author | Yafei Ma | |
contributor author | Lei Wang | |
contributor author | Xuhui Zhang | |
contributor author | Jianren Zhang | |
contributor author | Cody Hutchinson | |
contributor author | Issam E. Harik | |
date accessioned | 2022-01-30T20:42:20Z | |
date available | 2022-01-30T20:42:20Z | |
date issued | 8/1/2020 12:00:00 AM | |
identifier other | %28ASCE%29BE.1943-5592.0001592.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4266973 | |
description abstract | Corrosion increases the nominal stress of reinforcing bars and accelerates the fatigue crack propagation. The stress redistribution induced by bond degradation between concrete and rebars makes the fatigue life prediction of reinforced concrete (RC) structures more complicated. This paper proposes a crack propagation-based fatigue life prediction method for corroded RC beams incorporating fatigue damage of concrete, fatigue bond degradation, and pitting corrosion. The fatigue damage of concrete is modeled based on plastic strain analysis. For the fatigue-worsened bond degradation between concrete and corroded rebars, a novel strain-incompatibility analysis method is developed to quantify the slip of reinforcements in concrete. The fatigue crack propagation parameters of rebars and the corrosion pit-induced stress concentration are experimentally obtained. The stress intensity for the fatigue crack at the corrosion pit root is calculated by an asymptotic interpolation method. Then, the fatigue failure analysis of corroded RC beams is performed, where the reinforcement fracture, concrete crush, and bond degradation-induced anchorage failure at beam ends are checked. The proposed method is verified by the test data. The effects of bond degradation and concrete damage on the fatigue life prediction are analyzed and discussed. The proposed method for fatigue life prediction gives a reasonable estimate of the service life of corroded RC beams. | |
publisher | ASCE | |
title | Crack Propagation-Based Fatigue Life Prediction of Corroded RC Beams Considering Bond Degradation | |
type | Journal Paper | |
journal volume | 25 | |
journal issue | 8 | |
journal title | Journal of Bridge Engineering | |
identifier doi | 10.1061/(ASCE)BE.1943-5592.0001592 | |
page | 13 | |
tree | Journal of Bridge Engineering:;2020:;Volume ( 025 ):;issue: 008 | |
contenttype | Fulltext |