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A novel inversion method for assessing pipe corrosion condition based on upstream-downstream water quality variation
Yun-Qiao Zeng1, Tian-Yang Zhang1, Zhen-Ning Luo1
1State Key Laboratory of Water Pollution Control and Green Resource Recycling, Key Laboratory of Urban Water Supply, Water Saving and Water Environment Governance in the Yangtze River Delta of Ministry of Water Resources, College of Environmental Science and Engineering, Tongji University, Shanghai, 200092, PR China; Shanghai Institute of Pollution Control and Ecological Security, Shanghai, 200092, PR China.
None:
Internal corrosion in drinking water distribution systems (DWDSs) drives secondary water quality deterioration, yet scalable approaches for inferring in-service corrosion condition remain limited. In this study, 20 excavated pipe segments from a large metropolitan DWDS were investigated using paired upstream-downstream water quality measurements, inner wall image interpretation, and physicochemical characterization of corrosion scales. A residence-time-normalized variation rate was used to quantify segment-level water quality change. By comparing alternative image-weighting schemes and PCA scoring combinations, a mutually validated corrosion score was derived. The score captured the dominant contrast between Fe-rich corrosion products and Ca-enriched materials and showed strong agreement with the image-based condition index (Spearman's ρ = 0.95, p < 0.001). Among the evaluated models, a multivariable linear regression (MLR) model was selected for its strong predictive performance and interpretability. Incorporating pipe attributes and selected variation metrics, it explained 85.4% of the variance in the corrosion score (R2 = 0.854) and provided clear in-sample discrimination between severe and non-severe segments. Independent validation using 12 additional and non-excavated pipe segments achieved 83.3% classification accuracy. These results demonstrate that pipe corrosion condition can be inferred from routine water quality signals through a mechanistically interpretable and statistically grounded framework, providing new insight into how pipe wall condition shapes downstream water quality responses in drinking water distribution systems.
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