Designing for Resilience: An Integrated Engineering Framework for Irrigation Infrastructure in Climate Vulnerable Himalayan Basins

Authors

  • Ramesh Kumar Singh Department of Civil Engineering, Noida International University, India https://orcid.org/0009-0004-9503-9326
  • Pradip Bantawa Department of Civil Engineering, Noida International University, India
  • Satendra Ray Department of Civil Engineering, Noida International University, India
  • Sunil Thakur Department of Mechanical Engineering, Noida International University, India

Keywords:

Climate-Resilient Infrastructure, Flood Frequency Analysis, Himalayan River Basin, Sediment Settling Basin Design, Supply-Limited Transport, Water Quality Eutrophication

Abstract

Designing resilient irrigation infrastructure under hydrological uncertainty is a critical challenge in climate-vulnerable, sediment-laden Himalayan basins. This study develops an integrated engineering framework through comprehensive assessment of Nepal's Bagmati River at Pandhera Dobhan, combining forty-one years of discharge data (1979–2019), historical and contemporary sediment records (1990–2024), and seasonal water quality monitoring. The Log-Normal distribution provided the best fit for flood frequency analysis (χ² goodness-of-fit, p < 0.05), yielding a 100-year design flood of 7,638 m³/s (95% CI: 6,110–9,166 m³/s). Applying a recommended climate safety margin of 15–20% to address non-stationarity raises the practical design value to 8,800–9,200 m³/s. Mann-Kendall analysis revealed no significant trend in annual peak flows (τ = 0.08, p = 0.32) but identified increasing pre-monsoon flows (τ = 0.22, p = 0.03; Sen's slope: +15.3 m³/s/yr). The flow duration curve establishes Q₉₅=11 m³/s as the environmental flow requirement. The river exhibits extreme seasonality, with suspended sediment concentrations ranging from 40.5 ppm (±12 SD) in the dry season to monsoon peaks of 2,214 ppm (±458 SD) in a supply-limited transport regime (R² < 0.3). Post-2015 Gorkha earthquake monsoon sediment concentrations increased by 48.7% relative to the 1990–1997 baseline (p = 0.008). From particle size analysis, D50 = 0.4 mm was determined for the settleable sediments. The phosphate values measured were 3.5 mg/L (±0.7 SD), which is very much higher than the 0.1 mg/L eutrophication limit value. The electrical conductivity stayed lower than 200 μS/cm, meeting FAO. These interconnected constraints are synthesized into a quantitative "Resilience Trilemma" framework, from which specific design parameters are derived: a settling basin of 3,347–6,300 m² surface area (overflow rate: 0.77 cm/s), Manning's n of 0.0225 for unlined canals, freeboard of 0.8 m for flows exceeding 10 m³/s, and a design duty of 0.88 lps/ha. Validated against operational data from the Bagmati Irrigation Project, this framework provides a transferable, climate-smart model for irrigation infrastructure design in rapidly changing mountain basins worldwide.

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Author Biographies

Ramesh Kumar Singh, Department of Civil Engineering, Noida International University, India

Ph.D. Scholar

Pradip Bantawa, Department of Civil Engineering, Noida International University, India

Ph.D. Scholar

Satendra Ray, Department of Civil Engineering, Noida International University, India

Ph.D. Scholar

Sunil Thakur, Department of Mechanical Engineering, Noida International University, India

Professor

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Published

2026-07-23

How to Cite

Singh, R. K., Bantawa, P., Ray, S., & Thakur, S. (2026). Designing for Resilience: An Integrated Engineering Framework for Irrigation Infrastructure in Climate Vulnerable Himalayan Basins. Journal of Advanced Academic Research, 13(2), 127-142. https://doi.org/10.3126/jaar.v13i2.97629

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Articles

How to Cite

Singh, R. K., Bantawa, P., Ray, S., & Thakur, S. (2026). Designing for Resilience: An Integrated Engineering Framework for Irrigation Infrastructure in Climate Vulnerable Himalayan Basins. Journal of Advanced Academic Research, 13(2), 127-142. https://doi.org/10.3126/jaar.v13i2.97629