Effectiveness of basin morphometry, remote sensing, and applied geosciences on groundwater recharge potential mapping: a comparative study within a small watershed

Suvendu ROY, Abhay Sankar SAHU

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Front. Earth Sci. ›› 2016, Vol. 10 ›› Issue (2) : 274-291. DOI: 10.1007/s11707-016-0558-3
RESEARCH ARTICLE
RESEARCH ARTICLE

Effectiveness of basin morphometry, remote sensing, and applied geosciences on groundwater recharge potential mapping: a comparative study within a small watershed

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Abstract

A multidisciplinary approach using the integrated field of geosciences (e.g., geomorphology, geotectonics, geophysics, and hydrology) is established to conduct groundwater recharge potential mapping of the Kunur River Basin, India. The relative mean error (RME) calculation of the results of three applied techniques and water table data from twenty-four observation wells in the basin over the 2000-2010 period are presented. Nine sub-basins were identified and ranked for the RME calculation, where the observation wells-based ranking was taken as standard order for comparison. A linear model has been developed using six factors (drainage density, surface slope, ruggedness index, lineament density, Bouguer gravity anomaly, and potential maximum water retention capacity) and a grid-wise weighted index. In a separate comparative approach, the sub-basin and grid-wise analyses have been conducted to identify the suitable spatial unit for watershed level hydrological modeling.

Keywords

groundwater / basin morphometry / SCS curve number / geosciences / geoinformatics

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Suvendu ROY, Abhay Sankar SAHU. Effectiveness of basin morphometry, remote sensing, and applied geosciences on groundwater recharge potential mapping: a comparative study within a small watershed. Front. Earth Sci., 2016, 10(2): 274‒291 https://doi.org/10.1007/s11707-016-0558-3

References

[1]
Ahmad I, Verma V, Verma M K (2015). Application of Curve Number Method for Estimation of Runoff Potential in GIS Environment. 2nd International Conference on Geological and Civil Engineering, IPCBEE, 80, 16–20
CrossRef Google scholar
[2]
Ajmal M, Moon G, Ahn J, Kim T (2015). Investigation of SCS-CN and its inspired modified models for runoff estimation in South Korean watersheds. J Hydro-environment Res, 9(4): 592–603
CrossRef Google scholar
[3]
Anbazhagan S, Ramasamy S M, Das Gupta S (2005). Remote sensing and GIS for artificial recharge study, runoff estimation and planning in Ayyar basin, Tamil Nadu, India. Environ Geol, 48(2): 158–170
CrossRef Google scholar
[4]
Avinash K, Deepika B, Jayappa K S (2014). Basin geomorphology and drainage morphometry parameters used as indicators for groundwater prospect: insight from geographical information system (GIS) technique. Journal of Earth Science, 25(6): 1018–1032
CrossRef Google scholar
[5]
Avinash K, Jayappa K S, Deepika B (2011). Prioritization of sub-basins based on geomorphology and morphometric analysis using remote sensing and geographic information system (GIS) techniques. Geocarto Int, 26(7): 569–592
CrossRef Google scholar
[6]
Banerjee T, Das A L, Mukhopadhyay S C (2011). Prioritisation of Silai sub watersheds for erosion management using drainage morphometry and soil erosion rates. Geogr Rev India, 73(4): 323–338
[7]
Biswas S, Sudhakar S, Desai V R (1999). Prioritization of sub-watersheds based on morphometric analysis of drainage basin: a remote sensing and GIS approach. Journal of the Indian Society of Remote Sensing, 27(3): 155–166
CrossRef Google scholar
[8]
CGWB (Central Ground Water Board) (2010). Groundwater Scenario of India 2009–10. Ministry of Water Resources, Govt. of India
[9]
CGWB (Central Ground Water Board) (2014). Aquifer Systems of West Bengal. Ministry of Water Resources, Govt. of India, Eastern Region, Kolkata
[10]
Chaudhary B S, Kumar M, Roy A K, Ruhal D S (1996). Application of Remote sensing and Geographic Information Systems in Groundwater investigations in Sohna block, Gurgaon District, Haryana (India). In: International Archives of Photogrametry and Remote sensing Vienna, vol. XXXI, Part B6, 18–23
[11]
Chow V T (1964). Handbook of Applied Hydrology. New York: McGraw-Hill
[12]
de Alwis D A, Easton Z M, Dahlke H E, Philpot W D, Steenhuis T S (2007). Unsupervised classification of saturated areas using a time series of remotely sensed images. Hydrol Earth Syst Sci, 11(5): 1609–1620
CrossRef Google scholar
[13]
Dobrin M B (1976). Introduction to Geophysical Prospecting. New York: McGraw-Hill Bock Company
[14]
Drury S A (1993). Image Interpretation in Geology. UK: Chapman & Hall
[15]
Elbeih S F (2015). An overview of integrated remote sensing and GIS for groundwater mapping in Egypt. Ain Shams Engineering Journal, 6(1): 1–15
CrossRef Google scholar
[16]
Elmahdy S I, Mohamed M M (2015). Automatic detection of near surface geological and hydrological features and investigating their influence on groundwater accumulation and salinity in southwest Egypt using remote sensing and GIS. Geocarto Int, 30(2): 132–144
CrossRef Google scholar
[17]
Esper Angillieri M Y (2008). Morphometric analysis of Colanguil river basin and flash flood hazard, San Juan, Argentina. Environmental Geology, 55(1): 107–111
CrossRef Google scholar
[18]
Falkenmark M (1994). Successfully coping with complex water scarcity: an issue of land/water integration. In: Gieske A, Gould J, eds. Proceedings of the Workshop on Integrated Water Resources Management, University of Botswana and Rural Industries Research Centre, Kanye-Gaborone, 11–26
[19]
Godebo T R (2005). Application of Remote Sensing and GIS for Geological Investigation and Groundwater Potential Zone Identification, Southeastern Ethiopian Plateau, Bale Mountains and the Surrounding Areas. Thesis of M. Sc. Dissertation, Department of Earth Sciences, Addis Ababa University, 43
[20]
Gopinath G, Seralathan P (2004). Identification of Groundwater Prospective Zones Using IRS-ID LISS III and Pump Test Methods. Journal of Indian Society of Remote Sensing, 32(4): 329–342
CrossRef Google scholar
[21]
Gravelius H (1914). Grundrifi der gesamten Gewcisserkunde. Band I: Flufikunde (Compendium of Hydrology, vol. I. Rivers, in German). Germany: Goschen, Berlin
[22]
Gundalia M, Dholakia M (2014). Impact of Monthly Curve Number on Daily Runoff Estimation for Ozat Catchment in India. Open Journal of Modern Hydrology, 4(04): 144–155
CrossRef Google scholar
[23]
Guo K, Wang J, Wang Y (2015). Application of ZY-3 remote sensing image in the research of Huashan experimental watershed. Proceedings of the International Association of Hydrological Sciences, 368: 51–56
CrossRef Google scholar
[24]
Hadley R F, Schumm S A (1961). Sediment sources and drainage basin characteristics in upper Cheyenne River basin. Washington, DC: US Geological Survey, Water-Supply Paper. 1531–B, 198
[25]
Hajam R A, Hamid A, Bhat S (2013). Application of morphometric analysis for geo-hydrological studies using geo-spatial technology- A case study of Vishav Drainage Basin. Hydrol Current Res., 4: 157
CrossRef Google scholar
[26]
Haridas V R, Aravmdan S, Gopinath G (1998). Remote sensing and its applications for groundwater favourable area identification. Qut J GARC, 6(1): 18–22
[27]
Haridas V R, Chandra Sekaran V A, Kumaraswamy K, Rajendran S, Unnikrishnan K (1994). Geomorphological and lineament studies of Kanjamalai using IRS-IA data with special reference to groundwater potentiality. Trans Inst Indian Geogr, 16(1): 35–41
[28]
Hidore J J (1964). Landform characteristics affecting watershed yields on the Mississippi–Missouri interfluve. In: Moore G A, ed. Proceedings of the Oklahoma Academy of Science. Edmond, Oklahoma: University of Central Oklahoma, 201–203
[29]
Horton R E (1932). Drainage basin characteristics. Trans Am Geophys Union, 13(1): 350–361
CrossRef Google scholar
[30]
Horton R E (1945). Erosional development of streams and their drainage basins: hydro physical approach to quantitative morphology. Geol Soc Am Bull, 56(3): 275–370
CrossRef Google scholar
[31]
Indian Meteorological Department (2014). IMD District wise normals, Barddhaman. Govt. of India
[32]
Javed A, Khanday Y M, Ahmed R (2009). Prioritization of sub-watersheds based on morphometric and land use analysis using remote sensing and GIS techniques. Journal of Indian Society of Remote Sensing, 37(2): 261–274
CrossRef Google scholar
[33]
Jiang D, Wang J, Huang Y, Zhou K, Ding X, Fu J (2014). The Review of GRACE Data Applications in Terrestrial Hydrology Monitoring. Advances in Meteorology, Volume 2014, Article ID 725131, 9 pages, http://dx.doi.org/10.1155/2014/725131
[34]
Kale V S, Gupta A (2001). Introduction to geomorphology. Hyderabad, India: Orient Longman Ltd
[35]
Khan M A, Gupta V P, Moharana P C (2001). Watershed prioritization using remote sensing and geographical information system: a case study from Guhiya. India. J Arid Environ, 49(3): 465–475
CrossRef Google scholar
[36]
Khan Z A, Tewari R C (2011). Palaeochannel and palaeohydrology of a Middle Siwalik (Pliocene) fluvial system, northern India. J Earth Syst Sci, 120(3): 531–543
CrossRef Google scholar
[37]
Kirpich Z P (1940). Time of concentration of small agricultural watersheds. Civ Eng (NYNY), 6: 362
[38]
Kolker A S, Cable J E, Johannesson K H, Allison M A, Inniss L V (2013). Pathways and processes associated with the transport of groundwater in deltaic systems. J Hydrol (Amst), 498: 319–334
CrossRef Google scholar
[39]
Koopmans B N (1983). Side looking Radar, a tool for geological surveys. Remote Sens Rev, 1(1): 19–69
CrossRef Google scholar
[40]
Krishnamurthy J, Venkatesa Kumar N, Jayaraman V, Manivel M (1996). An approach to demarcate groundwater potential zones through remote sensing and a geographical information system. Int J Remote Sens, 17(10): 1867–1884
CrossRef Google scholar
[41]
Kumar R, Raj H (2013). Mitigation of groundwater depletion hazards in India. Curr Sci, 104(10): 1271
[42]
Long D, Scanlon B R, Longuevergne L, Sun A Y, Fernando D N, Save H (2013). GRACE satellite monitoring of large depletion in water storage in response to the 2011 drought in Texas. Geophys Res Lett, 40(13): 3395–3401
CrossRef Google scholar
[43]
Long D, Shen Y, Sun A, Hong Y, Longuevergne L, Yang Y, Li B, Chen L (2014). Drought and flood monitoring for a large karst plateau in Southwest China using extended GRACE data. Remote Sens Environ, 155: 145–160
CrossRef Google scholar
[44]
Long L T, Kaufmann R D (2013). Acquisition and Analysis of Terrestrial Gravity Data. Delhi: Cambridge University Press
[45]
Longuevergne L, Scanlon B R, Wilson C R (2010). GRACE Hydrological estimates for small basins: evaluating processing approaches on the High Plains Aquifer, USA. Water Resour Res, 46(11): W11517
CrossRef Google scholar
[46]
Magesh N S, Jitheshal K V, Chandrasekar N, Jini K V (2013). Geographical information system based morphometric analysis of Bharathapuzha River Basin, Kerla, India. Appl Water Sci, 3(2): 467–477
CrossRef Google scholar
[47]
Mallinson D J, Smith C W, Culver S J, Riggs S R, Ames D (2010). Geological characteristics and spatial distribution of paleo-inlet channels beneath the outer banks barrier islands, North Carolina, USA. Estuar Coast Shelf Sci, 88(2): 175–189
CrossRef Google scholar
[48]
Manu M S, Anirudhan S (2008). Drainage characteristics of Achankovil river basin, Kerala. J Geol Soc India, 71: 841–850
[49]
Martin A K, Gadiga B L (2015). Hydrological and Morphometric Analysis of Upper Yedzaram Catchmnet of Mubi in Adamawa State, Nigeria Using Geographical Information System (GIS). World Environment, 5(2): 63–69
CrossRef Google scholar
[50]
McCauley J, Schaber F, Breed C S, Grolier M J, Haynes C V, Issawa B, Elachi C, Blom R (1982). Subsurface valleys and geo-archeology of the eastern Sahara revealed by Shuttle radar. Science, 218(4576): 1004–1020
CrossRef Google scholar
[51]
Meijerink A M G (1996). Remote sensing applications to hydrology: groundwater. Hydrol Sci J, 41(4): 549–561
CrossRef Google scholar
[52]
Menenti M, LI X, Wang J, Vereecken H, LI J, Mnacini M, Liu Q, Jia L, Kuenzer C, Huang S, Yesou H, Wen J, Ker Y, Cheng X, Gourmelen N, KE C, Ludwing R, LIN H, Eineder M, MA Y, Su ZB (2015). Hydrologic and Cryospheric Processes Observed From Space. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XL (7/W3): 1101–1110
CrossRef Google scholar
[53]
Miller V C (1953). A quantitative geomorphic study of drainage basin characteristics in the Clinch mountain area. New York: Department of Geology, ONR, Columbia University, Virginia and Tennessee, Project NR389–402, Technical Report 3
[54]
Minor Irrigation Census (2001). Report on Census of Minor Irrigation Schemes (1993-94). Minor Irrigation Division, Ministry of Water Resources, Govt. of India, New Delhi
[55]
National Climate Centre (2006). Trends in the rainfall pattern over the India. India Meteorological Department, Pune, India
[56]
NGRI (1978). NGRI/GPH-1 to 5: Gravity Maps of India scale 1: 5,000,000. National Geophysical Research Institute, Hyderabad, India
[57]
NIH (National Institute of Hydrology) (1996-1997). Infiltration Studies in Sher-Umar River Doab in Narmada basin. Report No. CS (AR) 6/96-97, Jal Vighyan Bhawan, Roorkee, India
[58]
Niyogi M (1985). Groundwater resource of the Ajay Basin. In: Chatterjee S P, ed. Geographical Mosaic- Professor K.G. Bagechi Felicitation, Manasi Press, Calcutta, India, 165–182
[59]
Nooka Ratnam K, Srivastava Y K, Venkateswara Rao V, Amminedu E, Murthy K S R (2005). Check dam positioning by prioritization of micro watersheds using SYI model and morphometric analysis – remote sensing and GIS perspective. Journal of the Indian Society of Remote Sensing, 33(1): 25–38
CrossRef Google scholar
[60]
NRSC (2014). National geomorphological and lineament mapping on 1:50,000 scale using Resourcesat-1 LISS-III data. Manual for Geomorphology and Lineament Mapping (Web Version), National Remote Sensing Centre, Hyderabad, India
[61]
Obi Reddy G P, Maji A K, Gajbhiye K S (2004). Drainage morphometry and its influence on landform characteristics in a basaltic terrain, central India: a remote sensing and GIS approach. Int J Appl Earth Obs Geoinf, 6(1): 1–16
CrossRef Google scholar
[62]
Pakhmode V, Kulkarni H, Deolankar S B (2003). Hydrological-drainage analysis in watershed-programme planning: a case from the Deccan basalt, India. Hydrogeol J, 11(5): 595–604
CrossRef Google scholar
[63]
Philip G M, Watson D F (1982). A precise method for determining contoured surfaces. Aust Petrol Explor Assoc J, 22(1): 205–212
[64]
Prakash S R, Mishra D (1993). Identification of groundwater prospecting zones by using remote sensing and geoelectrical methods in and around Saidnager area, Dakar Block, Jalaun district, uttar pradesh. Indian Society of Remote Sensing, 21(4): 217–227
CrossRef Google scholar
[65]
Prasad A S S S R S, Venkateswarlu N, Reddy P R (2005). Crustal density model along Gopali- Port Canning profile, West Bengal basin using seismic and gravity data. J Ind Geophys Union, 9(4): 235–239
[66]
Raghunath H M (2013). Hydrology: Principal, Analysis, Design (2nd Revised Ed.). New Delhi: New Age International Publishers
[68]
Rajwant, SharmaU K (2015). Morphometric analysis of third order river basins to assess the vulnerability of Baner Khad Watershed towards Erosional process, Himachal Pradesh, India. Himalayan Geology, 36(1): 65–73
[69]
Ramalingam M, Santhakumar A R (2001). Case study on artificial recharge using remote sensing and GIS. www.GISdevelopment.net, accessed on January 2, 2014
[70]
Ramamoorthi A (1983). Snow-melt run-off studies using remote sensing data. Sadhana, 6: 279–286
[71]
Rango A, Ritchie J C (1996). Remote sensing application to hydrology. Hydrol Sci J, 41(4): 477–494
CrossRef Google scholar
[72]
Ravindran K V, Jeyram A (1997). Groundwater prospects of Shahbad tehsil, Baran district and eastern Rajasthan: a remote sensing approach. Indian society of remote sensing, 25 (4): 239–246
[73]
Reddy J R (2005). A Textbook of Hydrology. New Delhi: University Science Press
[74]
Ringrose S, Vanderpost C, Matheson W (1998). Evaluation of vegetative criteria for near-surface groundwater detection using multispectral mapping and GIS techniques in semi-arid Botswana. Appl Geogr, 18(4): 331–354
CrossRef Google scholar
[75]
Roy A K, Ray P K C (1993). Groundwater investigation using remote sensing and geographic information techniques- A case study in Manabazar-II, Purulia (W.B.). Proceeding national symposium of north-eastern region, Guwahati, India, 180–184
[76]
Roy S, Mistri B (2013). Estimation of peak flood discharge for an ungauged river: a case study of the Kunur River, West Bengal. Geogr J, 2013(214140): 1–11
CrossRef Google scholar
[77]
Roy S, Sahu A S (2015). Quaternary tectonic control on channel morphology over sedimentary low land: a case study in the Ajay-Damodar interfluve of Eastern India. Geoscience Frontiers, 6(6): 927–946, doi: 10.1016/j.gsf.2015.04.001
[78]
Sahu S, Saha D (2014). Geomorphologic, stratigraphic and sedimentologic evidences of tectonic activity in Sone–Ganga alluvial tract in Middle Ganga Plain, India. J Earth Syst Sci, 123:1335–1347
[79]
Samadder R K, Kumar S, Gupta R P (2011). Palaeochannels and their potential for artificial groundwater recharge in the western Ganga plains. J Hydrol (Amst), 400(1-2): 154–164
CrossRef Google scholar
[80]
Sankar K (2002). Evaluation of groundwater potential zones using remote sensing data in Upper Vaigai river basin, Tamil Nadu. India J Indian Soc Rem Sens, 30(3): 119–129
CrossRef Google scholar
[81]
Saraf A K, Choudhury P R (1998). Integrated remote sensing and GIS for groundwater exploration and identification of artificial recharge sites. Int J Remote Sens, 19(10): 1825–1841
CrossRef Google scholar
[82]
Saravanan S, Manjula R (2015). Geomorphology based semi-distributed approach for modeling rainfall-runoff modeling using GIS. Aquatic Procedia, 4: 908–916
CrossRef Google scholar
[83]
Schultz G A (1997). Use of remote sensing data in a GIS environment for water resources management, Remote Sensing and Geographic Information Systems for Design and Operation of Water Resources Systems. In: Proceedings of Rabat Symposium S3, April 1997. IAHS Publ no. 242, 3–15
[84]
Schumm S A (1956). Evolution of drainage system and slope in badlands at Perth Amboy, New Jersey. Geol Soc Am Bull, 67(5): 597–646
CrossRef Google scholar
[85]
Shah T (2009). Taming the Anarchy: Groundwater Governance in South Asia. Resources for the Future, Washington DC and International Water Management Institute, Colombo
[86]
Shah T (2011). Innovations in Groundwater Management: Examples from India. International Water Management Institute. http://rosenberg.ucanr.org/documents/argentina/Tushar ShahFinal.pdf
[87]
Shankar V P S, Kulkarni H, Krishnan S (2011). India’s groundwater challenge and the way forward. Econ Polit Wkly, XLVI(2): 37–45
[88]
Shi J, Wang J, Hsu A Y, O’Neill P E, Engman E T (1997). Estimation of bare surface soil moisture and surface roughness parameter using L-band SAR image data. IEEE Trans Geosci Rem Sens, 35(5): 1254–1266
CrossRef Google scholar
[89]
Shi Z H, Chen L D, Fang N F, Qin D F, Cai C F (2009). Research on the SCS CN initial abstraction ratio using rainfall-runoff event analysis in the Three Gorges Area, China. Catena, 77(1): 1–7
CrossRef Google scholar
[90]
Smith A B, Walker J P, Western A W (2004). Assimilation of gravity data into a soil moisture and groundwater column model. In: Teuling A J, Leijnse H, Troch P A, Sheffield J, Wood E, F, eds. Proceedings of the 2nd international CAHMDA workshop on: The Terrestrial Water Cycle: Modelling and Data Assimilation Across Catchment Scales, Princeton, NJ, 135–137
[91]
Smith K G (1950). Standards for grading texture of erosional topography. American Journal of Science, 248: 655–668
[91a]
Soil Conservation Service (1964). National engineering handbook. Section 4, Hydrology, Department of Agriculture, Washington, 450
[92]
Soil Conservation Service (1972). National engineering handbook. Section 4, Hydrology, Department of Agriculture, Washington, 762
[93]
Sreedevi P D, Subrahmanyam K, Ahmed S (2005). The significance of morphometric analysis for obtaining groundwater potential zones in a structurally controlled terrain. Environmental Geology, 47(3): 412–420
CrossRef Google scholar
[94]
Sridhar A (2007). Discharge estimation from planform characters of the Shedhi River, Gujarat alluvial plain: present and past. J Earth Syst Sci, 116(4): 341–346
CrossRef Google scholar
[95]
Sridhar A, Chamyal L S, Bhattacharjee F, Singhvi A K (2013). Early Holocene fluvial activity from the sedimentology and palaeohydrology of gravel terrace in the semi arid Mahi River Basin, India. J Asian Earth Sci, 66: 240–248
CrossRef Google scholar
[96]
Srinivasa V S, Govindaiah S, Honne Gowda H (2008). Prioritization of sub-watersheds for sustainable development and management of natural resources: an integrated approach using remote sensing, GIS and socio-economic data. Curr Sci, 95: 345–354
[97]
Strahler A N (1957). Quantative Analysis of Watershed geomorphology. Transactions. American Geophysical Union, 38(6): 913–920
[98]
Strahler A N (1964). Quantitative geomorphology of drainage and channel networks. In: Chow V T, ed. Handbook of Applied Hydrology. New York: McGraw Hill Book Company, 439–476
[99]
Subba Rao N (2009). A numerical scheme for groundwater development in a watershed basin of basement terrain: a case study from India. Hydrogeol J, 17(2): 379–396
CrossRef Google scholar
[100]
Subba Rao N, Chakradhar G K J, Srinivas V (2001). Identification of groundwater potential zones using remote sensing techniques in and around Guntur Town, Andhra Pradesh, India. Journal of Indian Society of Remote Sensing, 29(1&2): 69–78
[101]
Suja Rose R S, Krishnan N (2009). Spatial analysis of groundwater potential using remote sensing and GIS in the Kanyakumari and Nambiyar Basins, India. J Indian Soc Remote Sens, 37(4): 681–692
CrossRef Google scholar
[102]
Suresh M, Sudhakar S, Tiwari K N, Chowdary V M (2004). Prioritization of watersheds using morphometric parameters and assessment of surface water potential using remote sensing. Journal of the Indian Society of Remote Sensing, 32(3): 249–259
CrossRef Google scholar
[103]
Thakkar A K, Dhiman S D (2007). Morphometric analysis and prioritization of miniwatersheds in Mohr watershed, Gujarat, using remote sensing and GIS techniques. Journal of the Indian Society of Remote Sensing, 35(4): 313–321
CrossRef Google scholar
[104]
Todd D K, Mays L W (2005). Groundwater Hydrology (3rd edition). New York: John Wiley & Sons, 636
[105]
United State Geological Society (1997). Introduction to Potential Fields: Gravity. FS-239-95. Available onhttp://pubs.usgs.gov/fs/fs-0239-95/fs-0239-95.pdf, retrieved on 13th December, 2014
[106]
United States Department of Agriculture, Natural Resource Conservation Service, and National Employee Development Centre (1999). SCS Runoff Equation: Module 205. Engineering and Hydrology Training Series, 1–27
[107]
van Dijk A I J M, Renzullo L J (2011). Water resource monitoring systems and the role of satellite observations. Hydrol Earth Syst Sci, 15(1): 39–55
CrossRef Google scholar
[108]
Verma R K (1985). Gravity field, seismicity, and tectonics of the Indian peninsula and the Himalayas (Solid earth sciences library). Holland: D. Reidel Publishing Company
CrossRef Google scholar
[109]
Wagener T, Wheater H S, Gupta H V (2004). Rainfall-Runoff Modelling In: Gauged and Ungauged Catchments. London: Imperial College Press
[110]
Wagner W, Naeimi V, Scipal K, de Jeu R, Martinez-Fernandez J (2007). Soil moisture from operational meteorological satellites. Journal of Hydrogeology, 15(1): 121–131
CrossRef Google scholar
[111]
Wahr J, Swenson S, Zlotnicki V, Velicogna I (2004). Timevariable gravity from GRACE: fist results. Geophys Res Lett, 31(11): L11501
CrossRef Google scholar
[112]
Yeh H F, Lin H I, Lee S T, Chang M H, Hsu K C, Lee C H (2014). GIS and SBF for estimating groundwater recharge of a mountainous basin in the Wu River watershed, Taiwan. J Earth Syst Sci, 123(3): 503–516
CrossRef Google scholar
[113]
Zankhna S, Thakkar M G (2014). Palaeochannel Investigations and Geo Hydrological Significance of Saraswati River of Mainland Gujarat,India: using remote sensing and GIS techniques. J Environ Res Develop, 9(2): 472–479
[114]
Zhang H Y, Shi Z H, Fang N F, Guo M H (2015). Linking watershed geomorphic characteristics to sediment yield: evidence from the Loess Plateau of China. Geomorphology, 234: 19–27
CrossRef Google scholar

Acknowledgements

Roy would like to thank and acknowledge University Grand Commission, New Delhi, India, for the financial support as Junior Research Fellowship [Award Letter No.:F.15-6(DEC.,2012)/2013(NET), UGC Ref. No. 3224/(NET-DEC.2012)] to carry out the research work presented in this paper. We also thank the anonymous reviewers and editors for their constructive comments.

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