Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section

Lateral confinement with fiber-reinforced polymer (FRP) jackets can effectively improve the axial compressive behavior of concrete but with considerable variability in outcomes. Therefore, that there is a need for calibrations of deterministic models for strength enhancement (SEE) and strain enhance...

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Main Authors: Chen, Qi-Sen, Yu, Bo, Li, Bing
Other Authors: School of Civil and Environmental Engineering
Format: Journal Article
Language:English
Published: 2022
Subjects:
Online Access:https://hdl.handle.net/10356/162327
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author Chen, Qi-Sen
Yu, Bo
Li, Bing
author2 School of Civil and Environmental Engineering
author_facet School of Civil and Environmental Engineering
Chen, Qi-Sen
Yu, Bo
Li, Bing
author_sort Chen, Qi-Sen
collection NTU
description Lateral confinement with fiber-reinforced polymer (FRP) jackets can effectively improve the axial compressive behavior of concrete but with considerable variability in outcomes. Therefore, that there is a need for calibrations of deterministic models for strength enhancement (SEE) and strain enhancement (SAE) based on proposed probabilistic prediction models and comprehensive available databases. The probabilistic models that incorporate the essential factors identified from the previous study were updated based on the Bayesian theory, and Markov Chain Monte Carlo (MCMC). Moreover, nine representative deterministic SEE models and six SAE models were evaluated by credible interval (CI) and confidence level (CL) under different conditions of the axial strain of unconfined concrete in the literature, the hoop rupture strain, the peak axial compressive stress of unconfined concrete, and the lateral confinement stiffness. Analysis of different FRP types was also conducted individually for more critical results. The proposed probabilistic models are capable of predicting the characteristics of ultimate axial stress and corresponding strain and providing an efficient approach to calibrate the confidence level and computational accuracy of deterministic models in literatures.
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spelling ntu-10356/1623272022-10-14T05:58:32Z Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section Chen, Qi-Sen Yu, Bo Li, Bing School of Civil and Environmental Engineering Engineering::Civil engineering Fiber reinforced Polymer Ultimate Stress Lateral confinement with fiber-reinforced polymer (FRP) jackets can effectively improve the axial compressive behavior of concrete but with considerable variability in outcomes. Therefore, that there is a need for calibrations of deterministic models for strength enhancement (SEE) and strain enhancement (SAE) based on proposed probabilistic prediction models and comprehensive available databases. The probabilistic models that incorporate the essential factors identified from the previous study were updated based on the Bayesian theory, and Markov Chain Monte Carlo (MCMC). Moreover, nine representative deterministic SEE models and six SAE models were evaluated by credible interval (CI) and confidence level (CL) under different conditions of the axial strain of unconfined concrete in the literature, the hoop rupture strain, the peak axial compressive stress of unconfined concrete, and the lateral confinement stiffness. Analysis of different FRP types was also conducted individually for more critical results. The proposed probabilistic models are capable of predicting the characteristics of ultimate axial stress and corresponding strain and providing an efficient approach to calibrate the confidence level and computational accuracy of deterministic models in literatures. 2022-10-14T05:58:31Z 2022-10-14T05:58:31Z 2021 Journal Article Chen, Q., Yu, B. & Li, B. (2021). Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section. Construction and Building Materials, 304, 124673-. https://dx.doi.org/10.1016/j.conbuildmat.2021.124673 0950-0618 https://hdl.handle.net/10356/162327 10.1016/j.conbuildmat.2021.124673 2-s2.0-85114003939 304 124673 en Construction and Building Materials © 2021 Elsevier Ltd. All rights reserved.
spellingShingle Engineering::Civil engineering
Fiber reinforced Polymer
Ultimate Stress
Chen, Qi-Sen
Yu, Bo
Li, Bing
Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section
title Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section
title_full Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section
title_fullStr Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section
title_full_unstemmed Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section
title_short Probabilistic calibration of strength and strain enhancement models for FRP-confined concrete in circular section
title_sort probabilistic calibration of strength and strain enhancement models for frp confined concrete in circular section
topic Engineering::Civil engineering
Fiber reinforced Polymer
Ultimate Stress
url https://hdl.handle.net/10356/162327
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