Water Accounting Using Satellite Products and Water Accounting Plus Framework in a Semi-Arid Betwa River Basin, India
Abstract
:1. Introduction
2. Study Area Description
2.1. Location
2.2. Geology, Soil Types, and Climate
3. Modeling
3.1. Satellte Products
3.2. WA+ Modeling
4. Results and Discussion
4.1. Generation of WA+ Based LULC Map (WALU-Water Accounting and Land Use)
4.2. Spatio-Temporal Distribution of Rainfall
Validation of PERSIANN and CHIRPS with the IMD datasets
4.3. Spatio-Temporal Variability of Evapotranspiration and Water Yield in the Basin
4.4. Estimation of Total Water Consumption in the Basin (Sheet 2)
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
References
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Data Source | Data Types | Temporal Resolution | Spatial Resolution | Avilable from | Web Portal |
---|---|---|---|---|---|
WDPA | World data on protected areas | Annual | Shapefile | - | https://www.protectedplanet.net/en/thematic-areas/wdpa?tab=WDPA (accessed on 6 January 2022) |
GlobCover LC v2 | Glob cover | Annual | 300 m | 1992–2015 | http://due.esrin.esa.int/page_globcover.php (accessed on 6 January 2022) |
MODIS | Land use/land cover | Annual | 500 m | 2001-onwards | https://lpdaac.usgs.gov/products/mcd12q1v006/ (accessed on 6 January 2022) |
MIRCA | Monthly irrigated and rainfed crop areas | Annual | 10 km | 1998–2002 | https://www.uni-frankfurt.de/45217893/5_MIRCA? (accessed on 6 January 2022) |
GMIA | Global map of irrigated areas | Annual | 5 arc-min | 2013 | https://www.fao.org/aquastat/en/ (accessed on 7 January 2022) |
8daily LAI | Lead area index | 8 daily | 500 m | 2000 onwards | https://lpdaac.usgs.gov/products/mcd15a2hv006/ (accessed on 7 January 2022) |
8daily GPP | Gross primary production | 8 daily | 500 m | 2000 onwards | https://lpdaac.usgs.gov/products/mod17a2hv006/ (accessed on 7 January 2022) |
Yearly NPP | Net primary production | Annual | 500 m | 2000-onwards | https://lpdaac.usgs.gov/products/mod17a3hv006/ (accessed on 7 January 2022) |
IMD | Precipitation | Daily | 0.25° | 1901-onwards | https://www.imdpune.gov.in/ (accessed on 7 January 2022) |
PERSIANN | Precipitation | Daily | 0.25° | 2000-onwards | https://chrsdata.eng.uci.edu/ (accessed on 7 January 2022) |
CHIRPS | Precipitation | Daily | 5 km | 1981-onwards | https://www.chc.ucsb.edu/data/chirps (accessed on 7 January 2022) |
Managed Water Use | Modified Land Use | Utilized Land Use | Conserved Land Use |
---|---|---|---|
Irrigated crops Irrigated pastures Irrigated biofuels Reservoirs and canals Irrigated fruit Greenhouses Aquaculture Residential areas and homesteads Industrial area Irrigated recreational parks Managed wetlands and swamps Inundation areas Mining Evaporation ponds Wastewater treatment beds Power plants | Plantation trees Rainfed pastures Rainfed crops cereals Rainfed fruit Rainfed biofuels Rainfed recreational parks Fallow land Dump sites Oasis and wadis Roads and lanes Peri-urban areas | Closed natural forests Tropical rain forest Open natural forest Woody savanna Open savanna Sparse savanna Shrub land Natural pastures Deserts Mountains Rocks Flood plains Tidal flats Bare land Wasteland Moore fields Wetlands and swamps Alien invasive species Permafrosts | Reserves or national parks Areas set aside for conservation Glaciers Coastal protection sites Protected forests Protected shrubland Protected natural water bodies Protected wetlands |
Water Management Category (WMC) | WALU Code | WA+ Based LULC | Area (km2) | Area (%) |
---|---|---|---|---|
Protected Land Use (PLU) (20%) | PLU1 | Protected forests | 16.92 | 0.04 |
PLU2 | Protected shrubland | 65.19 | 0.15 | |
PLU3 | Protected natural waterbodies | 2.39 | 0.01 | |
Utilized Land Use (ULU) (25.25%) | ULU1 | Closed deciduous forest | 1435.65 | 3.32 |
ULU2 | Shrub land and mesquite | 7734.44 | 17.87 | |
ULU3 | Brooks, rivers, and waterfalls | 1757.69 | 4.06 | |
Modified Land Use (MLU) (11.10%) | MLU1 | Forest plantations | 0.57 | 0.00 |
MLU2 | Rainfed crops—cereals | 3569.55 | 8.25 | |
MLU3 | Rainfed crops—vegetables and melons | 17.26 | 0.04 | |
MLU4 | Fallow and idle land | 1178.07 | 2.72 | |
MLU5 | Rainfed industry parks—outdoor | 37.93 | 0.09 | |
Managed Water Use (MWU) (63.46%) | MWU1 | Irrigated crops—cereals | 26,859.26 | 62.06 |
MWU2 | Irrigated homesteads and gardens (urban cities)–outdoor | 211.54 | 0.49 | |
MWU3 | Irrigated homesteads and gardens (rural cities)–outdoor | 349.06 | 0.91 | |
Total Area (km2) | 43,280.54 | 100.00 |
Datasets Used for Comparison | Locations | R2 | RMSE | NSE | BIAS (%) |
---|---|---|---|---|---|
Observed vs. PERSIANN | Basin Outlet | 0.79 | 44.09 | 0.45 | −46.6 |
Observed vs. CHIRPS | 0.72 | 48.77 | 0.58 | −32.94 | |
Observed vs. PERSIANN | Entire Basin | 0.83 | 48.35 | 0.81 | −6.75 |
Observed vs. CHIRPS | 0.94 | 29.92 | 0.92 | −7.8 |
Evaporation | For PERSIANN Precipitation | For CHIRPS Precipitation | Implication |
---|---|---|---|
Transpiration fraction | 36.27% | 36.27% | Sufficient amount of transpiration being generated from rainfed and irrigated areas |
Beneficial fraction | 38.31% | 37.97% | Poor utilization of ET amounts |
Agricultural ET fraction | 24.41% | 24.41% | Area dominated by agricultural activities |
Irrigated ET fraction | 60.00% | 60.00% | Large proportion of ET came from irrigated areas |
Rainfed ET Fraction | 8.14% | 8.14% | Considerable proportion of ET came from rainfed areas |
Evaporation | For PERSIANN Precipitation | For CHIRPS Precipitation | Implication |
---|---|---|---|
Transpiration fraction | 39.50% | 31.10% | Sufficient amount of transpiration being generated from rainfed and irrigated areas |
Beneficial fraction | 40.88% | 33.07% | Poor utilization of ET amounts |
Agricultural ET fraction | 27.35% | 21.65% | Area dominated by agricultural activities |
Irrigated ET fraction | 59.94% | 59.45% | Large proportion of ET being generated from irrigated areas |
Rainfed ET Fraction | 8.29% | 8.27% | Considerable proportion of ET came from rainfed areas |
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Singh, V.G.; Singh, S.K.; Kumar, N.; Kumar, P.; Gupta, P.K.; Singh, P.K.; Gašparović, M.; Ray, R.L.; Saito, O. Water Accounting Using Satellite Products and Water Accounting Plus Framework in a Semi-Arid Betwa River Basin, India. Water 2022, 14, 3473. https://doi.org/10.3390/w14213473
Singh VG, Singh SK, Kumar N, Kumar P, Gupta PK, Singh PK, Gašparović M, Ray RL, Saito O. Water Accounting Using Satellite Products and Water Accounting Plus Framework in a Semi-Arid Betwa River Basin, India. Water. 2022; 14(21):3473. https://doi.org/10.3390/w14213473
Chicago/Turabian StyleSingh, Vikram Gaurav, Sudhir Kumar Singh, Nirmal Kumar, Pankaj Kumar, Praveen Kumar Gupta, Pushpendra Kumar Singh, Mateo Gašparović, Ram Lakhan Ray, and Osamu Saito. 2022. "Water Accounting Using Satellite Products and Water Accounting Plus Framework in a Semi-Arid Betwa River Basin, India" Water 14, no. 21: 3473. https://doi.org/10.3390/w14213473
APA StyleSingh, V. G., Singh, S. K., Kumar, N., Kumar, P., Gupta, P. K., Singh, P. K., Gašparović, M., Ray, R. L., & Saito, O. (2022). Water Accounting Using Satellite Products and Water Accounting Plus Framework in a Semi-Arid Betwa River Basin, India. Water, 14(21), 3473. https://doi.org/10.3390/w14213473