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Created: | Apr 13, 2023 at 2:01 p.m. | |
Last updated: | Apr 13, 2023 at 2:02 p.m. | |
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Sharing Status: | Public |
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Abstract
The mountainous Himalayan watersheds are important hydrologic systems responsible for much of the water supply in the Indian sub-continent. These watersheds are increasingly facing anthropogenic and climate-related pressures that impact spatial and temporal distribution of water availability. This study evaluates temporal and spatial distribution of water availability including groundwater recharge and quality (non-point nitrate loadings) for a Himalayan watershed, namely, the Upper Yamuna watershed (part of the Ganga River basin). The watershed has an area of 11 600 km(2) with elevation ranging from 6300 to 600 m above mean sea level. Soil and Water Assessment Tool (SWAT), a physically-based, time-continuous model, has been used to simulate the land phase of the hydrological cycle, to obtain streamflows, groundwater recharge, and nitrate (NO3) load distributions in various components of runoff. The hydrological SWAT model is integrated with the MODular finite difference groundwater FLOW model (MODFLOW), and Modular 3-Dimensional Multi-Species Transport model (MT3DMS), to obtain groundwater flow and NO3 transport. Validation of various modules of this integrated model has been done for sub-basins of the Upper Yamuna watershed. Results on surface runoff and groundwater levels obtained as outputs from simulation show a good comparison with the observed streamflows and groundwater levels (Nash-Sutcliffe and R-2 correlations greater than + 0.7). Nitrate loading obtained after nitrification, denitrification, and NO3 removal from unsaturated and shallow aquifer zones is combined with groundwater recharge. Results for nitrate modeling in groundwater aquifers are compared with observed NO3 concentration and are found to be in good agreement. The study further evaluates the sensitivity of water availability to climate change. Simulations have been made with the weather inputs of climate change scenarios of A2, B2, and A1B for end of the century. Water yield estimates under climate change scenarios have been made and implications on groundwater and groundwater quality have been assessed. The delicate groundwater resource balance that connects livelihoods of millions of people seems to be under tremendously increasing pressure due to the dynamic conditions of the natural environment of the region and the future climate changes. (C) 2013 Elsevier B.V. All rights reserved.
Subject Keywords
Coverage
Spatial
Content
Additional Metadata
Name | Value |
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DOI | 10.1016/j.scitotenv.2013.01.022 |
Depth | N/A |
Scale | 10 001 - 100 000 km² |
Layers | 1 |
Purpose | Groundwater contamination, Climate change |
GroMoPo_ID | 2016 |
IsVerified | True |
Model Code | MODFLOW |
Model Link | https://doi.org/10.1016/j.scitotenv.2013.01.022 |
Model Time | 1976-1979 |
Model Year | 2013 |
Creator Email | sachawruzzante@gmail.com |
Model Country | India |
Data Available | Report/paper only |
Developer Email | kkn2104@columbia.edu |
Dominant Geology | Unsure |
Developer Country | India |
Publication Title | Modeling hydrology, groundwater recharge and non-point nitrate loadings in the Himalayan Upper Yamuna basin |
Original Developer | No |
Additional Information | N/A |
Integration or Coupling | Surface water, Solute transport |
Evaluation or Calibration | Contaminant concentrations, Streamflow, Groundwater recharge |
Geologic Data Availability | No |
How to Cite
This resource is shared under the Creative Commons Attribution CC BY.
http://creativecommons.org/licenses/by/4.0/
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