Numerical Analysis of Groundwater Seepage and Exit Gradients in Hydraulic Structures

Authors

  • Zaid N. Hashim Faculty of Technical, University of Alfurat Alawsat Technical, Najaf
  • Alaa Mohsin Dawood Faculty of Technical, University of Alfurat Alawsat Technical, Najaf
  • Hana M. Alkassar Faculty of Technical, University of Alfurat Alawsat Technical, Najaf

DOI:

https://doi.org/10.21070/pels.v10i1.3118

Keywords:

Exit Gradient, Hydraulic Structures, SEEP/W, Seepage Analysis, Sheet Piles

Abstract

General Background: Seepage beneath hydraulic structure foundations poses significant risks of piping failure and structural instability. Specific Background: Installing vertical sheet piles alters flow paths and mitigates subsurface water pressure under variable upstream heads. Knowledge Gap: Precise comparative quantifications of seepage flow rates and exit gradients with and without sheet piles remain insufficiently detailed for varying head conditions. Aims: This study evaluates seepage discharge and exit gradients under hydraulic heads up to 10 meters using 2D finite element modeling. Results: Omitting sheet piles increases maximum seepage rates from 361.1x10-3 to 491.3x10-3 m3/sec/m and exit gradients from 0.41 to 1.21. Novelty: Quantitative modeling demonstrates that removing sheet piles elevates seepage discharge by 26.5% and exit gradient by 66.6%. Implications: Incorporating sheet piles is essential in foundation design to prevent subsurface erosion and ensure long-term structural safety.

Keywords: Exit Gradient, Hydraulic Structures, SEEP/W, Seepage Analysis, Sheet Piles

Key Findings Highlights

Sheet pile installation decreases peak under-foundation seepage discharge by 26.5 percent at maximum head.

Critical exit gradients rise by 66.6 percent when structural cutoff barriers are omitted.

Steady-state finite element simulations confirm severe piping risks without foundation sheet piles.

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Published

2026-08-22

How to Cite

[1]
Zaid N. Hashim, A. M. Dawood, and H. M. Alkassar, “Numerical Analysis of Groundwater Seepage and Exit Gradients in Hydraulic Structures”, PELS, vol. 10, no. 1, p. 10.21070/pels.v10i1.3118, Aug. 2026.