Free‐Overfall Flow Measurement in Sloping Inclined‐Wall U‐Shaped Channels

ABSTRACT Accurate discharge estimation in open‐channel systems is essential for irrigation water management, particularly in geometrically complex channels. This study investigates free‐overfall flow in inclined‐wall U‐shaped channels using combined laboratory experiments and CFD simulations, aiming to develop a practical discharge estimation method based on the end‐depth ratio (EDR). Experiments covered two plexiglass U‐shaped channels, five bed slopes (s = 0,1/800,1/600,1/400 and 1/200), discharges of 0.0063–0.0576 m 3 /s and a constant Manning roughness coefficient of n = 0.011. CFD simulations were used to analyse free‐surface profiles, velocity distributions and Froude number variations near the brink. The results show that channel geometry and bed slope jointly affect free‐surface development, flow transition and the end‐depth–critical‐depth relationship. The U‐shaped geometry introduces curvature effects and non‐uniform velocity distributions that differ from simplified channel sections. Empirical discharge relationships were established using measurable hydraulic variables. The slope‐dependent formulation performed best, with R 2 = 0.99, MAE = 1.13 × 10 −3 and RMSE = 1.44 × 10 −3 m 3 /s. Residual diagnostics further yielded a residual–prediction coefficient of determination of R 2 res = 1.62 × 10 −4 and a Durbin–Watson statistic of 1.98, indicating a weak residual trend and little first‐order autocorrelation. These results support the use of the slope‐dependent formulation as the preferred discharge‐estimation relationship within the investigated experimental range.

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Publication Details

Journal
Irrigation and Drainage
Published
2026-09-21
DOI
https://doi.org/10.1002/ird.70228
Primary Topic
Hydraulic flow and structures
Type
article
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article

Free‐Overfall Flow Measurement in Sloping Inclined‐Wall U‐Shaped Channels

Wenè Wang, Fan Yang, Xuefei Huo, Yuxiang Ba et al.
Irrigation and Drainage
Hydraulic flow and structures
article

Free‐Overfall Flow Measurement in Sloping Inclined‐Wall U‐Shaped Channels

Wenè Wang, Fan Yang, Xuefei Huo, Yuxiang Ba, Xiaotao Hu, Sothearith Seak
article en

Abstract

ABSTRACT Accurate discharge estimation in open‐channel systems is essential for irrigation water management, particularly in geometrically complex channels. This study investigates free‐overfall flow in inclined‐wall U‐shaped channels using combined laboratory experiments and CFD simulations, aiming to develop a practical discharge estimation method based on the end‐depth ratio (EDR). Experiments covered two plexiglass U‐shaped channels, five bed slopes (s = 0,1/800,1/600,1/400 and 1/200), discharges of 0.0063–0.0576 m 3 /s and a constant Manning roughness coefficient of n = 0.011. CFD simulations were used to analyse free‐surface profiles, velocity distributions and Froude number variations near the brink. The results show that channel geometry and bed slope jointly affect free‐surface development, flow transition and the end‐depth–critical‐depth relationship. The U‐shaped geometry introduces curvature effects and non‐uniform velocity distributions that differ from simplified channel sections. Empirical discharge relationships were established using measurable hydraulic variables. The slope‐dependent formulation performed best, with R 2 = 0.99, MAE = 1.13 × 10 −3 and RMSE = 1.44 × 10 −3 m 3 /s. Residual diagnostics further yielded a residual–prediction coefficient of determination of R 2 res = 1.62 × 10 −4 and a Durbin–Watson statistic of 1.98, indicating a weak residual trend and little first‐order autocorrelation. These results support the use of the slope‐dependent formulation as the preferred discharge‐estimation relationship within the investigated experimental range.

Irrigation and Drainage
Institute of Technology of Cambodia (KH)
Clean water and sanitation
Openalex Percentile: Top 17%
Hydraulic flow and structures
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Free‐Overfall Flow Measurement in Sloping Inclined‐Wall U‐Shaped Channels — Wenè Wang, Fan Yang, et al. · Irrigation and Drainage (2026) | TGRS Research Map | TGRS