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Articles

IAEA Isotope-enabled coupled catchment–lake water balance model, IWBMIso: description and validationFootnote

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Pages 427-442 | Received 30 Jun 2015, Accepted 16 Sep 2015, Published online: 10 Mar 2016

References

  • Alley WM. Water balance models in one-month-ahead streamflow forecasting. Water Resour Res. 1985;21:597–606. doi: 10.1029/WR021i004p00597
  • Yates DN. WatBal – an integrated water-balance model for climate impact assessment of river basin runoff. Int J Water Resour Dev. 1996;12:121–140. doi: 10.1080/07900629650041902
  • Legates DR, Mather JR. An evaluation of the average annual global water balance. Geogr Rev. 1992;82:253–267. doi: 10.2307/215350
  • Legates DR, McCabe GJ. A re-evaluation of the average annual global water balance. Phys Geogr. 2005;26:467–479. doi: 10.2747/0272-3646.26.6.467
  • Strzepek KM, Yates DN. Climate change impacts on the hydrologic resources of Europe – a simplified continental scale analysis. Clim Change. 1997;36:79–92. doi: 10.1023/A:1005305827527
  • Wolock DM, McCabe GJ. Effects of potential climatic change on annual runoff in the conterminous United States. J Amer Water Resour Assoc. 1999;35:1341–1350. doi: 10.1111/j.1752-1688.1999.tb04219.x
  • Kebede S, Admasu G, Travi Y. Estimating ungauged catchment flows from Lake Tana floodplains, Ethiopia: an isotope hydrological approach. Isot Environ Health Stud. 2011;47:71–86. doi: 10.1080/10256016.2011.556724
  • Fekete BM, Gibson JJ, Aggarwal P, Vorosmarty CJ. Application of isotope tracers in continental scale hydrological modeling. J Hydrol. 2006;330:444–456. doi: 10.1016/j.jhydrol.2006.04.029
  • Stadnyk TA, Delavau C, Kouwen N, Edwards TWD. Towards hydrological model calibration and validation: simulation of stable water isotopes using the isoWATFLOOD model. Hydrol Process. 2013;27:3791–3810. doi: 10.1002/hyp.9695
  • Gonfiantini R. Environmental isotopes in lake studies. In: Fritz P, Fontes JC, editors. Handbook of environmental isotope geochemistry (Vol. 3). New York: Elsevier; 1986. p. 113–168.
  • Stets EG, Winter TC, Rosenberry DO, Striegl RG. Quantification of surface water and groundwater flows to open- and closed-basin lakes in a headwaters watershed using a descriptive oxygen stable isotope model. Water Resour Res. 2010;46:W03515. doi: 10.1029/2009WR007793
  • Dinçer T. The use of oxygen-18 and deuterium concentrations in the water balance of lakes. J Hydrol. 1968;4:1289–1306.
  • Gibson JJ, Edwards TWD. Regional surface water balance and evaporation–transpiration partitioning from a stable isotope survey of lakes in northern Canada. Glob Biogeochem Cycl. 2002;16:25–38. doi: 10.1029/2001GB001839
  • Leavesley GH, Markstrom SL, Viger RJ, Hay LE. USGS modular modeling system (MMS): precipitation-runoff modeling system (PRMS) MMS PRMS. In: Singh VP, Frevert DK, editors. Watershed models. Boca Raton, FL: CRC Press; 2005. p. 159–177.
  • Hostetler SW, Benson LV. Stable isotopes of oxygen and hydrogen in the Truckee River–Pyramid Lake surface-water system. 2. A predictive model of δ18O and δ2H in Pyramid Lake. Limnol Oceanogr. 1994;39:356–364. doi: 10.4319/lo.1994.39.2.0356
  • Craig H, Gordon LI. Deuterium and oxygen 18 variations in the ocean and the marine atmosphere. In: Tongiorgi E, editor. Stable isotopes in oceanographic studies and paleotemperatures. Pisa: Laboratorio di Geologia Nucleare; 1965. p. 9–130.
  • Gat JR. Oxygen and hydrogen isotopes in the hydrologic cycle. Annu Rev Earth Planet Sci. 1996;24:225–262. doi: 10.1146/annurev.earth.24.1.225
  • David O, Ascough JC II, Leavesley GH, Ahuja L. Rethinking modeling framework design: Object Modeling System 3.0. 2010 International Congress on Environmental Modelling and Software, Modelling for Environment's Sake, Fifth Biennial Meeting, Ottawa, Canada; 2010.
  • Leavesley GH, Lichty RW, Troutman BM, Saindon LG. Precipitation-runoff modelling system: user's manual. U.S. Geological Survey Water Resources Investigations Report 83–4238; 1983, p. 207.
  • Hamon WR. Estimating potential evapotranspiration. J Hydraul Div Proc Am Soc Civil Eng. 1961;87:107–120.
  • Senay GB. Modeling landscape evapotranspiration by integrating land surface phenology and a water balance algorithm. Algorithms. 2008;1:52–68. doi: 10.3390/a1020052
  • Maselli F, Papale D, Chiesi M et al. Operational monitoring of daily evapotranspiration by the combination of MODIS NDVI and ground meteorological data: application and evaluation in Central Italy. Remote Sens Environ. 2014;152:279–290. doi: 10.1016/j.rse.2014.06.021
  • DiMiceli CM, Carroll ML, Sohlberg RA, Huang C, Hansen MC, Townshend JRG. Annual global automated MODIS vegetation continuous fields (MOD44B) at 250 m Spatial resolution for data years beginning day 65, 2000–2010, Collection 5 Percent Tree Cover, University of Maryland, College Park, MD, USA; 2011.
  • Bowen GJ, Revenaugh J. Interpolating the isotopic composition of modern meteoric precipitation. Water Resour Res. 2003;39:1299. doi: 10.1029/2003WR002086
  • Jarvis A, Reuter HI, Nelson A, Guevara E. Hole-filled SRTM for the globe. version 4.. 2008. [cited 2014 Feb 18]. Available from the CGIAR-CSI SRTM 90m Database: https://protect-us.mimecast.com/s/0JzOBbfgomrxck, http://srtm.csi.cgiar.org.
  • Hay LE, Leavesley GH, Clark MP, Markstrom SL, Viger RJ, Umemoto M. Step-wise, multiple-objective calibration of a hydrologic model for a snowmelt-dominated basin. J Am Water Resour Assoc. 2006;42:891–900. doi: 10.1111/j.1752-1688.2006.tb04501.x
  • Majoube M. Fractionation in O-18 between ice and water vapor. J Chim Phys Phys Chim Biol. 1971;68:625–636.
  • Barnes CJ, Allison GB. Tracing of water movement in the unsaturated zone using stable isotopes of hydrogen and oxygen. J Hydrol. 1988;100:143–176. doi: 10.1016/0022-1694(88)90184-9
  • Horita J, Rozanski K, Cohen S. Isotope effects in the evaporation of water: a status report of the Craig–Gordon model. Isot Environ Health Stud. 2008;44:23–49. doi: 10.1080/10256010801887174
  • Hostetler SW, Bartlein PJ. Simulation of lake evaporation with application to modeling lake level variations of Harney–Malheur Lake, Oregon. Water Resour Res. 1990;26:2603–2612.
  • Benson L, Paillet F. HIBAL: a hydrologic–isotopic-balance model for application to paleolake systems. Quat Sci Rev. 2002;21:12–13.
  • FAO/IIASA/ISRIC/ISSCAS/JRC. Harmonized world soil database (version 1.2). Rome: FAO and IIASA; 2012.
  • Harris I, Jones PD, Osborn TJ, Lister DH. Updated high-resolution grids of monthly climatic observations – the CRU TS3.10 dataset. Int J Climatol. 2014;34:623–642. doi: 10.1002/joc.3711
  • Terzer S, Wassenaar LI, Araguás-Araguás LJ, Aggarwal PK. Global isoscapes for δ18O and δ2H in precipitation: improved prediction using regionalized climatic regression models. Hydrol Earth Syst Sci. 2013;17:4713–4728. doi: 10.5194/hess-17-4713-2013
  • Beven KJ. Equifinality and uncertainty in geomorphological modelling. In: Rhoads BL, Thorn CE, editors. The scientific nature of geomorphology. Chichester: Wiley; 1996. p. 289–313.

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