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Research Articles

Delineation of potential water harvesting site for agriculture water planning in Betwa basin of India using geospatial and analytical hierarchical process technique

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Pages 8315-8335 | Received 17 Jun 2021, Accepted 26 Oct 2021, Published online: 04 Nov 2021

References

  • Abbaspour KC, Vejdani M, Haghighat S, Yang J. 2007. SWAT-CUP calibration and uncertainty programs for SWAT. In: MODSIM 2007 International Congress on Modelling and Simulation, Modelling and Simulation Society of Australia and New Zealand; p. 1596–1602. https://www.scirp.org/(S(lz5mqp453edsnp55rrgjct55))/reference/ReferencesPapers.aspx?ReferenceID=1935519.
  • Abbaspour KC. 2011. User manual for SWAT-CUP: SWAT calibration and uncertainty analysis programs. Eawag: Swiss Fed. Inst. of Aquat. Sci. and Technol. Duebendorf, Switzerland, p. 103. http://www.eawag.ch/organization/abteilungen/siam/software/swat/indexEN.
  • Abeysingha NS, Singh M, Sehgal VK, Khanna M, Pathak H, Jayakody P, Srinivasan R. 2015. Assessment of water yield and evapotranspiration over 1985 to 2010 in the Gomti River basin in India using the SWAT model. Curr Sci. 108(12):2202–2212. https://www.jstor.org/stable/24905656.
  • Adham A, Wesseling JG, Riksen M, Ouessar M, Ritsema CJ. 2016. A water harvesting model for optimizing rainwater harvesting in the wadi Oum Zessar watershed, Tunisia. Agric Water Manage. 176:191–202..
  • Ahirwar S, Shukla JP. 2015. Upper Betwa river watershed management and development plan using remote sensing and GIS. Int J Eng Sci Res Technol. 4(11):484–491. http://paper.researchbib.com/view/paper/58795.
  • Ahirwar S, Shukla JP. 2018. Assessment of groundwater vulnerability in upper Betwa river watershed using GIS based DRASTIC model. J Geol Soc India. 91(3):334–340. 10.1007/s12594-018-0859-0.
  • Alwan IA, Aziz NA, Hamoodi MN. 2020. Potential water harvesting sites identification using spatial multi-criteria evaluation in Maysan Province, Iraq. IJGI. 9(4):235..
  • Arnold J, Williams A, Srinivasan R, King B, Griggs A. 1994. SWAT, soil and water assessment tool. USDA, Agricultural Research Service, Temple, TX 76502.
  • Betrie GD, Mohamed YA, Griensven AV, Srinivasan R. 2011. Sediment management modelling in the Blue Nile Basin using SWAT model. Hydrol Earth Syst Sci. 15(3):807–818..
  • Central Ground Water Board [CGWB]. 1994. Rain water harvesting guide. Ministry of Water Resources River Development & Ganga Rejuvenation, Govt. of India.
  • Central Ground Water Board [CGWB]. 2000. Hydrogeology of the Bundelkhand region. Ministry of Water Resources River Development & Ganga Rejuvenation, Govt. of India.
  • Central Ground Water Board [CGWB]. 2007. Manual on artificial recharge of groundwater. Ministry of Water Resources, River Development & Ganga Rejuvenation, Govt. of India.
  • Daiman A, Gupta N. 2014. AHP technique use for develop GIS model of groundwater potential zone in parts of Bhopal district. Int J Eng, Sci Math. 3(4):123–137. http://www.indianjournals.com/ijor.aspx?target=ijor:ijesm&volume=3&issue=4&article=011.
  • El Jazouli A, Barakat A, Khellouk R. 2019. GIS-multicriteria evaluation using AHP for landslide susceptibility mapping in Oum Er Rbia high basin (Morocco). Geoenviron Disasters. 6(1):1–12.
  • Flugel WA. 1995. Delineating hydrological response units by geographical information system analyses for regional hydrological modelling using PRMS/MMS in the drainage basin of the River Brol, Germany. Hydrol Process. 9(3–4):423–436..
  • Food and Agriculture Organization [FAO]. 2016. Climate change, agriculture and food security. The state of food and agriculture; p. 1–173.
  • Gitau MW, Chaubey I. 2010. Regionalization of SWAT model parameters for use in ungauged watersheds. Water. 2(4):849–871..
  • Glendenning CJ, Vervoort RW. 2010. Hydrological impacts of rainwater harvesting (RWH) in a case study catchment: The Arvari River, Rajasthan, India. Part 1: field-scale impacts. Agric Water Manage. 98(2):331–342.
  • Goyal MK, Madramootoo CA, Richards JF. 2015. Simulation of the streamflow for the Rio Nuevo watershed of Jamaica for use in agriculture water scarcity planning. J Irrig Drain Eng. 141(3):04014056..
  • Gupta M, Srivastava PK. 2010. Integrating GIS and remote sensing for identification of groundwater potential zones in the hilly terrain of Pavagarh, Gujarat, India. Water Int. 35(2):233–245..
  • Hashim HQ, Sayl KN. 2021. Detection of suitable sites for rainwater harvesting planning in an arid region using geographic information system. Appl Geomat. 13(2):235–248.
  • Jamali AA, Kalkhajeh RG. 2020. Spatial modeling considering valley’s shape and rural satisfaction in check dams site selection and water harvesting in the watershed. Water Resour Manage. 34(10):3331–3344.
  • Jamali AA, Randhir TO, Nosrati J. 2018. Site suitability analysis for subsurface dams using Boolean and fuzzy logic in arid watersheds. J Water Resour Plann Manage. 144(8):04018047.
  • Jeet P, Singh DK, Sarangi A. 2019. Development of a composite hydrologic index for semi-arid region of India. Ground Water. 57(5):749–755.
  • Krois J, Schulte A. 2014. GIS-based multi-criteria evaluation to identify potential sites for soil and water conservation techniques in the Ronquillo watershed, northern Peru. Appl Geogr. 51:131–142..
  • Kumar MG, Agarwal AK, Bali R. 2008. Delineation of potential sites for water harvesting structures using remote sensing and GIS. J Indian Soc Remote Sens. 36(4):323–334. 10.1007/s12524-008-0033-z.
  • Leavesley GH, Stannard LG. 1995. The precipitation–runoff modeling system – PRMS. In: Singh VP, editor. Computer models of watershed hydrology. Fort Collins, CO: Water Resources Publications; p. 281–310.
  • Mahmoud T, Gairola S, El-Keblawy A. 2015. Parthenium hysterophorus and Bidens pilosa, two new records to the invasive weed flora of the United Arab Emirates. J New Biol Reports. 4(1):26–32.
  • Mane V, Katpatal YB, Aher KR. 2014. Spatial verification of SCS methods in correlation to land use/land cover and soil characteristics. Int J Recent Trends Sci Technol. 12(2):315–322.
  • Mohtar RH, Zhai T, Choi JY, Bruggeman A, Ouessar M, Abdelli F, Engel BA. 2006. Web-based GIS-hydrologic modeling for siting water harvesting reservoirs. In: 14th International Soil Conservation Organization Conference. Water Management and Soil Conservation in Semi-Arid Environments. Marrakech, Morocco, May 14–19, 2006 (ISCO 2006).
  • Moriasi DN, Arnold JG, Van Liew MW, Bingner RL, Harmel RD, Veith TL. 2007. Model evaluation guidelines for systematic quantification of accuracy in watershed simulations. Trans ASABE. 50(3):885–900.
  • Nag SK, Ghosh P. 2013. Delineation of groundwater potential zone in Chhatna Block. Bankura District, West Bengal, India using remote sensing and GIS techniques. Environ Earth Sci. 70:2115–2127.
  • Narasimhan B, Srinivasan R. 2005. Development and evaluation of Soil Moisture Deficit Index (SMDI) and Evapotranspiration Deficit Index (ETDI) for agricultural drought monitoring. Agric Meteorol. 133(1–4):69–88.
  • Nash JE, Sutcliffe JV. 1970. River flow forecasting through conceptual models. Part I: a discussion of principles. J Hydrol. 10(3):282–290.
  • National Institute of Hydrology. 1998. Study of soil moisture movement and recharge to groundwater due to monsoon rains and irrigation using Tritium tagging technique in Haridwar district. Jal Vigyan Bhavan, Roorkee.
  • National Rainfed Area Authority [NRAA]. 2008. Report of the Inter-Ministerial Central Team on Drought mitigation for Bundelkhand region of Uttar Pradesh and Madhya Pradesh.
  • National Rainfed Area Authority [NRAA]. 2011. Technology for increasing production of Rabi Crops in Bundelkhand. Technical Bulletin No. 1. National Rainfed Area Authority, New Delhi, India; p. 66.
  • National Rainfed Area Authority [NRAA]. 2014. Synthesis on identify gaps in input supply, credit availability, Dissemination of appropriate technology and other requirements relevant for improvement of productivity of field and horticultural crops in rainfed areas of Bundelkhand region. NITI Aayog, New Delhi.
  • Owolabi ST, Madi K, Kalumba AM, Orimoloye IR. 2020. A groundwater potential zone mapping approach for semi-arid environments using remote sensing (RS), geographic information system (GIS), and analytical hierarchical process (AHP) techniques: a case study of Buffalo catchment, Eastern Cape, South Africa. Arab J Geosci. 13(22):1–17.
  • Parsasyrat L, Jamali AA. 2015. The effects of impermeable surfaces on the flooding possibility in Zarrin-Shahr, Isfahan Municipal Watershed. J Appl Environ Biol Sci. 5(1):28–38.
  • Parupalli S, Padma Kumari K, Ganapuram S. 2019. Assessment and planning for integrated river basin management using remote sensing, SWAT model and morphometric analysis (case study: Kaddam River Basin, India). Geocarto Int. 34(12):1332–1362..
  • Rana VK, Suryanarayana TMV. 2020. Performance evaluation of MLE, RF and SVM classification algorithms for watershed scale land use/land cover mapping using sentinel 2 bands. Remote Sens Appl: Soc Environ. 19:100351.
  • Rao CS, Rejani R, Rao CR, Rao KV, Osman M, Reddy KS, Kumar M, Kumar P. 2017. Farm ponds for climate-resilient rainfed agriculture. Current Science. 112(3):471–477. https://pdfs.semanticscholar.org/1804/5d28e12caa05323fdfcbb1644c086ec2f846.pdf.
  • Rolland A, Rangarajan R. 2013. Runoff estimation and potential recharge site delineation using analytic hierarchy process. Geocarto Int. 28(2):159–170..
  • Sakthivadivel R. 2007. The groundwater recharge movement in India. In: Giordano M, and Willholth KG, editors. The agricultural groundwater revolution: Opportunities and threats to development. Colomo: IWMI and CABI; pp. 195–210.
  • Saraf AK, Choudhury PR. 1998. Integrated remote sensing and GIS for groundwater exploration and identification of artificial recharge sites. Int J Remote Sens. 19(10):1825–1841.
  • Sayl K, Adham A, Ritsema CJ. 2020. A GIS-based multi-criteria analysis in modeling optimum sites for rainwater harvesting. Hydrology. 7(3):51.
  • Sayl KN, Muhammad NS, El-Shafie A. 2017. Robust approach for optimal positioning and ranking potential rainwater harvesting structure (RWH): a case study of Iraq. Arab J Geosci. 10(18):413. 10.1007/s12517-017-3193-8.
  • Sharda VN, Ojasvi PR. 2005. Water harvesting through watershed management in different agro-ecological regions of India. Indian J Agric Sci. 75(12):771–780.
  • Sheikhalishahi N, Jamali AA, Hasanzadeh NM. 2016. Flood mapping using hydraulic modeling of rivers (Case Study: Manshad Watershed, Yazd Province). Geographic Space. 16(53):14–17.
  • Singh S, Kumar CP, Sharma A, Vatsa R. 2012. Quantification of groundwater recharge using visual help in Sonar sub-basin of Madhya Pradesh. J Indian Water Resources Soc. 32(3–4):23–31.
  • Singhai A, Das S, Kadam AK, Shukla JP, Bundela DS, Kalashetty M. 2019. GIS-based multi-criteria approach for identification of rainwater harvesting zones in upper Betwa sub-basin of Madhya Pradesh, India. Environ Dev Sustain. 21(2):777–797. 10.1007/s10668-017-0060-4.
  • Sinha R, Bapalu GV, Singh LK, Rath B. 2008. Flood risk analysis in the Kosi river basin, north Bihar using multi-parametric approach of analytical hierarchy process (AHP). J Indian Soc Remote Sens. 36(4):335–349. 10.1007/s12524-008-0034-y.
  • Sinha RS, Baksh M, Dutta V. 2016. Sustainable groundwater management in Uttar Pradesh with special reference to mapping and management of aquifers. Healthy Rivers–Ecosystem Benefits and Prosperity. Chennai: Bharat Book Centre; p. 280.
  • Sisay E, Halefom A, Khare D, Singh L, Worku T. 2017. Hydrological modelling of ungauged urban watershed using SWAT model. Model Earth Syst Environ. 3(2):693–702. 10.1007/s40808-017-0328-6.
  • Srinivasan R, Arnold JG. 1994. Integration of a basin‐scale water quality model with GIS. J Am Water Resources Assoc. 30(3):453–462..
  • Suryavanshi S, Pandey A, Chaube UC, Joshi N. 2014. Long-term historic changes in climatic variables of Betwa Basin, India. Theor Appl Climatol. 117(3–4):403–418. 10.1007/s00704-013-1013-y.
  • Thomas BF, Behrangi A, Famiglietti JS. 2016. Precipitation intensity effects on groundwater recharge in the southwestern United States. Water. 8(3):90..
  • Tran Trong D. 2006. Using GIS and AHP technique for land-use suitability analysis. In: International Symposium on Geoinformatics for Spatial Infrastructure Development in Earth and Allied Sciences 2006.
  • USDA. 1972. National Engineering Handbook. Soil Conservation Service, US Department Agriculture: Washington, DC.
  • Verma N, Patel RK. 2021. Delineation of groundwater potential zones in lower Rihand River Basin, India using geospatial techniques and AHP. Egypt J Remote Sensing Space Sci.
  • Vittal KPR, Das SK, Katyal JC, Munikrishnaiah N, Reddy MR. 1996. Soil and water conservation and improved crop management effects on watershed productivity in Andhra Pradesh, India. Am J Alt Ag. 11(1):2–6. https://www.jstor.org/stable/44503896.
  • Yannopoulos S, Giannopoulou I, Kaiafa-Saropoulou M. 2019. Investigation of the current situation and prospects for the development of rainwater harvesting as a tool to confront water scarcity worldwide. Water. 11(10):2168..
  • Yeh HF, Lee CH, Hsu KC, Chang PH. 2009. GIS for the assessment of the groundwater recharge potential zone. Environ Geol. 58(1):185–195. https://link.springer.com/article/10.1007%2Fs00254-008-1504-9.

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