Hydro-mechanical instability of concrete dam construction joints under hydraulic loading: aperture sensitivity, damage localization, and seepage-velocity acceleration

Seepage along construction joints can threaten the uplift stability and long-term safety of concrete dams. Although seepage-induced joint opening has been studied, the post-initiation transition from stable seepage to rapid uplift instability remains insufficiently understood. This study presents a coupled hydro-mechanical numerical framework with interfacial damage output to simulate the post-initiation uplift instability of concrete dam construction joints. The framework integrates hydraulic-head buildup, uplift separation, mechanically evaluated aperture evolution, interfacial damage analysis, and a seepage-velocity growth indicator. The results show that hydraulic head concentrates near the construction joint under anti-seepage constraint, reducing the effective normal stress and driving localized hydraulic separation. Uplift deformation develops near the jointed interface rather than as a uniform block deformation. Increasing the initial opening amplifies monitored uplift displacement and advances the transition from stable response to rapid separation and instability; the 3 mm opening loses stability earliest, followed by the 2 mm and 1 mm openings. The observed localization of interfacial degradation supports a damage-informed aperture interpretation in which interface deterioration may contribute to hydraulic-path development beyond mechanical opening alone. The magnitude of this additional contribution was not quantified because the damage-aperture coefficient was not independently calibrated. The normalized seepage-velocity response and velocity growth indicator further suggest that hydraulic acceleration may provide an early warning indicator of aperture-sensitive instability. These findings indicate that seepage-induced instability of dam construction joints should be evaluated through the combined evolution of hydraulic head, uplift separation, mechanically evaluated aperture, damage localization, and seepage-velocity, rather than through crack-opening initiation or displacement response alone. The proposed mechanism provides a basis for uplift instability assessment and monitoring of jointed hydraulic concrete structures.

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Publication Details

Journal
Scientific Reports
Published
2026-09-29
DOI
https://doi.org/10.1038/s41598-026-72379-0
Primary Topic
Dam Engineering and Safety
Type
article
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Hydro-mechanical instability of concrete dam construction joints under hydraulic loading: aperture sensitivity, damage localization, and seepage-velocity acceleration

Muhammad Riaz Ahmad, Lei Zheng, Guoxin Zhang, Songhui Li et al.
Scientific Reports
Dam Engineering and Safety
article

Hydro-mechanical instability of concrete dam construction joints under hydraulic loading: aperture sensitivity, damage localization, and seepage-velocity acceleration

Muhammad Riaz Ahmad, Lei Zheng, Guoxin Zhang, Songhui Li, Nazim Hussain, Yongrong Qiu
article en

Abstract

Seepage along construction joints can threaten the uplift stability and long-term safety of concrete dams. Although seepage-induced joint opening has been studied, the post-initiation transition from stable seepage to rapid uplift instability remains insufficiently understood. This study presents a coupled hydro-mechanical numerical framework with interfacial damage output to simulate the post-initiation uplift instability of concrete dam construction joints. The framework integrates hydraulic-head buildup, uplift separation, mechanically evaluated aperture evolution, interfacial damage analysis, and a seepage-velocity growth indicator. The results show that hydraulic head concentrates near the construction joint under anti-seepage constraint, reducing the effective normal stress and driving localized hydraulic separation. Uplift deformation develops near the jointed interface rather than as a uniform block deformation. Increasing the initial opening amplifies monitored uplift displacement and advances the transition from stable response to rapid separation and instability; the 3 mm opening loses stability earliest, followed by the 2 mm and 1 mm openings. The observed localization of interfacial degradation supports a damage-informed aperture interpretation in which interface deterioration may contribute to hydraulic-path development beyond mechanical opening alone. The magnitude of this additional contribution was not quantified because the damage-aperture coefficient was not independently calibrated. The normalized seepage-velocity response and velocity growth indicator further suggest that hydraulic acceleration may provide an early warning indicator of aperture-sensitive instability. These findings indicate that seepage-induced instability of dam construction joints should be evaluated through the combined evolution of hydraulic head, uplift separation, mechanically evaluated aperture, damage localization, and seepage-velocity, rather than through crack-opening initiation or displacement response alone. The proposed mechanism provides a basis for uplift instability assessment and monitoring of jointed hydraulic concrete structures.

Scientific Reports
Hong Kong Polytechnic University (HK), China Institute of Water Resources and Hydropower Research (CN)
Sustainable cities and communities
Openalex Percentile: Top 17%
Dam Engineering and Safety
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