Structural Performance and Damage Evaluation of Corroded Infill Slabs from the Champlain Bridge After 60 years in Service

En cours de chargement...
Vignette d'image

Nom de la revue

ISSN de la revue

Titre du volume

Éditeur

Université d'Ottawa / University of Ottawa

Licence Creative Commons

Attribution-NonCommercial-NoDerivatives 4.0 International

Résumé

The rapid deterioration of aging civil infrastructure represents a critical challenge for global transportation networks. While extensive research has focused on the performance of reinforced and prestressed concrete (PC) members subjected to laboratory-accelerated corrosion, there remains a fundamental disconnect between these controlled simulations and the complex, long-term degradation observed in field-aged structures. This doctoral research bridges this gap through a comprehensive multi-scale forensic and structural evaluation of roadway infill slabs extracted from the former Champlain Bridge in Montreal, Canada, after 57 years of aggressive environmental exposure. The research program integrates high-resolution non-destructive testing (NDT), forensic material characterization of 975 individual prestressing wires, and destructive testing of 15 full-scale slab panels under realistic boundary conditions. Material-scale analysis identifies a robust ductility transition threshold at approximately 3% mass loss, beyond which the ultimate strain capacity of parallel-wire tendons significantly deteriorates, independent of gauge length or prior loading history. At the structural scale, the research reveals a fundamental divergence in performance that is independent of average material degradation. Experimental results demonstrate a significant "capacity spread" at low corrosion levels. Specifically, specimens with nearly identical average mass-loss values exhibited ultimate load capacities varying by over 140% (160.1 kN to 384.3 kN). This disparity is identified as a consequence of localized interface conditions rather than distributed section loss. The forensic investigation confirms that grout integrity is a governing factor influencing the ultimate limit state. While solid grout coverage ensures ductile flexural behavior, crumbled or powdery grout leads to a more variable structural response. Such deterioration can trigger a premature transition to brittle shear failure. However, it can also facilitate bond-slip mechanisms that redistribute stresses and activate arching action. As demonstrated in the numerical investigation, this shift in the load-carrying mechanism can result in higher ultimate load capacities. The experimental findings are further validated through nonlinear finite element (FE) modelling, which successfully isolates the "ductility gap" caused by bond-slip mechanisms. The results prove that simplified evaluation metrics relying on average section loss, which is the current industry standard for large-scale bridge inventories, can lead to unconservative safety estimates. This thesis contributes a performance-based framework for the assessment of aging PC infrastructure, advocating for the prioritization of grout integrity and localized bond-penalty factors in national design codes. By integrating the assessment of volumetric steel loss with the governing physics of the tendon-concrete interface, this work provides bridge owners with a data-driven methodology to ensure the continued safety and reliability of aging transportation networks.

Description

Mots-clés

Prestressed concrete (PC), Post-tensioned slabs, Bridge deck slabs, Aging infrastructure assessment, Residual structural capacity, Champlain bridge forensic evaluation, Corrosion assessment, Non-destructive testing, Field-aged structural elements

Citation

Approbation

Évaluation

Complété par

Référencé par