Rainfall-Runoff Modeling Using the HEC-HMS Model for the Al-Adhaim River Catchment, Northern Iraq
Abstract
:1. Introduction
2. Methodology
2.1. Description of Study Area
2.2. Daily Rainfall Data
2.3. HEC-GeoHMS
2.4. HEC-HMS Project Set-Up
Model Input Parameters
3. Results and Discussion
3.1. Digital Elevation Model (DEM)
3.2. HEC-GeoHMS Development
3.2.1. Soil Map and Land Use/Cover Shape Files
3.2.2. Curve Number
3.3. Parameters Estimation
3.3.1. Loss Model—Soil Conservation Service Curve Number
3.3.2. Transform Model—Soil Conservation Service Unit Hydrograph Method
3.3.3. Routing—Muskingum Method
3.4. Model Calibration
3.5. Comparison of the Simulated and Observed Hydrograph and Validation of Model
3.6. Reservoir Modelling
4. Conclusions and Recommendations
- The HEC-HMS model can be used to obtain satisfactory simulated hydrological models and is a valuable tool for the management of dam storage by forecasting rainfall amounts.
- The simulation results of runoff discharge peaks are slightly different compared with the observed data.
- In the summer season with almost no precipitation, there was no flow and the pool elevation approached minimum limits. On the contrary, during the period of precipitation, the storage capacity approached the peak inflow of 742.4 m3/s for the years 2015–2016, which corresponds to maximum daily rainfall of 39.91 mm.
- The area of interest does not have an available discharge station other than the one located near the outlet. Discharge stations could provide real observed discharge data that can be used to validate the modeling results. Therefore, the provision of an upstream discharge station is vital.
- The development of serious water policy and planning strategies in accordance with the results obtained from this study could reduce the probability of floods and may help in the management and control of the dam outlet.
- During modeling using HEC-HMS, it was noticed that the main parameters which affect runoff quantities were the curve number and then initial abstraction.
- HEC-HMS model results were good for flood forecasting concerning the Al-Adhaim catchment. Data can be exported to simulate a 2-dimensional flood inundation map using a hydraulic model such as HEC-RAS. They can also be used for forecasting the rainfall using a suitable program to predict flooding for long-time periods.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Elevation 1 (m) | Area (km2) | Volume (MCM 2) |
---|---|---|
100 | 3 | 70 |
115 | 41 | 310 |
118 | 52 | 450 |
120 | 60 | 520 |
125 | 85 | 980 |
130 | 122 | 1400 |
135 | 170 | 2150 |
140 | 233 | 3130 |
143 | 270 | 3750 |
Date | Elevation 1 (m) | Capacity (BCM 2) |
---|---|---|
1/10/2015 | 120.71 | 0.60 |
1/10/2016 | 115.22 | 0.31 |
1/10/2017 | 113.94 | 0.27 |
1/10/2018 | 117.20 | 0.42 |
No. | Model | Method | Parameters Required (Unit) |
---|---|---|---|
1 | Loss Rate Parameter | SCS Curve Number | Initial abstraction (mm), Curve Number and Impervious area (%) |
2 | Runoff Transform | SCS Unit Hydrograph | Lag time (min) |
3 | Routing Method Constants | Muskingum | Travel time (K) and dimensionless weight (X) |
Sub-Basin | Basin Area (km2) | Basin Slope (%) | Curve Number (CN) | Potential Abstraction (mm) | Ia (mm) | Basin Lag (Hours) |
---|---|---|---|---|---|---|
W880 | 193.5333 | 37.00 | 87 | 1.49 | 7.59 | 5.3959 |
W890 | 708.2559 | 29.87 | 80 | 2.50 | 12.70 | 6.1618 |
W710 | 1635.3000 | 14.20 | 78 | 2.82 | 14.33 | 9.0085 |
W860 | 8.15850 | 35.00 | 95 | 0.53 | 2.67 | 5.4074 |
W620 | 2490.1000 | 18.24 | 75 | 3.33 | 16.93 | 8.0493 |
W980 | 81.4450 | 47.00 | 100 | 0.00 | 0.00 | 4.5998 |
W1000 | 24.7302 | 49.00 | 100 | 0.00 | 0.00 | 4.50491 |
W700 | 4485.1000 | 21.04 | 79 | 2.66 | 13.50 | 7.37090 |
W850 | 2718.1000 | 38.06 | 70 | 4.29 | 21.77 | 5.70099 |
Year | Storage (BCM)/Elevation (m) at the Start of the Hydrological Year | Peak Inflow (m3/s)/Date | Peak Discharge (m3/s)/Date | Inflow Volume (BCM) | Peak Storage (BCM)/Elevation (m) |
---|---|---|---|---|---|
2015–2016 | 0.60/120.71 | 742.4/12 April 2016 | 133.3/16 April 2016 | 1.320 | 0.860/124.6 |
2016–2017 | 0.31/115.20 | 396.9/24 March 2017 | 142.1/26 March 2017 | 0.895 | 0.438/118.4 |
2017–2018 | 0.27/113.94 | 625.1/18 February 2018 | 142.4/26 February 2018 | 0.953 | 0.438/118.4 |
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Hamdan, A.N.A.; Almuktar, S.; Scholz, M. Rainfall-Runoff Modeling Using the HEC-HMS Model for the Al-Adhaim River Catchment, Northern Iraq. Hydrology 2021, 8, 58. https://doi.org/10.3390/hydrology8020058
Hamdan ANA, Almuktar S, Scholz M. Rainfall-Runoff Modeling Using the HEC-HMS Model for the Al-Adhaim River Catchment, Northern Iraq. Hydrology. 2021; 8(2):58. https://doi.org/10.3390/hydrology8020058
Chicago/Turabian StyleHamdan, Ahmed Naseh Ahmed, Suhad Almuktar, and Miklas Scholz. 2021. "Rainfall-Runoff Modeling Using the HEC-HMS Model for the Al-Adhaim River Catchment, Northern Iraq" Hydrology 8, no. 2: 58. https://doi.org/10.3390/hydrology8020058
APA StyleHamdan, A. N. A., Almuktar, S., & Scholz, M. (2021). Rainfall-Runoff Modeling Using the HEC-HMS Model for the Al-Adhaim River Catchment, Northern Iraq. Hydrology, 8(2), 58. https://doi.org/10.3390/hydrology8020058