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Relevance of Hydro-Climatic Change Projection and Monitoring for Assessment of Water Cycle Changes in the Arctic

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Abstract

Rapid changes to the Arctic hydrological cycle challenge both our process understanding and our ability to find appropriate adaptation strategies. We have investigated the relevance and accuracy development of climate change projections for assessment of water cycle changes in major Arctic drainage basins. Results show relatively good agreement of climate model projections with observed temperature changes, but high model inaccuracy relative to available observation data for precipitation changes. Direct observations further show systematically larger (smaller) runoff than precipitation increases (decreases). This result is partly attributable to uncertainties and systematic bias in precipitation observations, but still indicates that some of the observed increase in Arctic river runoff is due to water storage changes, for example melting permafrost and/or groundwater storage changes, within the drainage basins. Such causes of runoff change affect sea level, in addition to ocean salinity, and inland water resources, ecosystems, and infrastructure. Process-based hydrological modeling and observations, which can resolve changes in evapotranspiration, and groundwater and permafrost storage at and below river basin scales, are needed in order to accurately interpret and translate climate-driven precipitation changes to changes in freshwater cycling and runoff. In contrast to this need, our results show that the density of Arctic runoff monitoring has become increasingly biased and less relevant by decreasing most and being lowest in river basins with the largest expected climatic changes.

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References

  • ACIA. 2005. Impacts of a warming Arctic: Arctic Climate Impact Assessment. Cambridge, UK: Cambridge University Press.

    Google Scholar 

  • Adam, J.C., I. Haddeland, F. Su, and D.P. Lettenmaier. 2007. Simulation of reservoir influences on annual and seasonal streamflow changes for the Lena, Yenisei and Ob’ rivers. Journal of Geophysical Research 112: D24114.

    Article  Google Scholar 

  • Adam, J.C., and D.P. Lettenmaier. 2003. Adjustment of global gridded precipitation for systematic bias. Journal of Geophysical Research 108: 1–14.

    Article  Google Scholar 

  • Adam, J.C., and D.P. Lettenmaier. 2008. Application of new precipitation and reconstructed streamflow products to streamflow trend attribution in northern Eurasia. Journal of Climate 21(8): 1807–1828.

    Article  Google Scholar 

  • Berezovskaya, S., D. Yang, and D.L. Kane. 2004. Compatibility analysis of precipitation and runoff trends over the large Siberian watersheds. Geophysical Research Letters 31: L21502.

    Article  Google Scholar 

  • Bring, A., and G. Destouni. 2009. Hydrological and hydrochemical observation status in the pan-Arctic drainage basin. Polar Research 28: 327–338.

    Article  Google Scholar 

  • Bulygina, O.N., V.N. Razuvaev, and N.N. Korshunova. 2009. Changes in snow cover over Northern Eurasia in the last few decades. Environmental Research Letters 4: 045026.

    Article  Google Scholar 

  • Chapman, W.L., and J.E. Walsh. 2007. Simulations of Arctic temperature and pressure by global coupled models. Journal of Climate 20: 609–632.

    Article  Google Scholar 

  • Déry, S.J., M. Stieglitz, E.C. McKenna, and E.F. Wood. 2005. Characteristics and trends of river discharge into Hudson, James, and Ungava Bays, 1964–2000. Journal of Climate 18: 2540–2557.

    Article  Google Scholar 

  • Destouni, G., F. Hannerz, C. Prieto, J. Jarsjö, and Y. Shibuo. 2008. Small unmonitored near-coastal catchment areas yielding large mass loading to the sea. Global Biogeochemical Cycles 22: GB4003.

    Article  Google Scholar 

  • Dyurgerov, M., A. Bring, and G. Destouni. 2010. Integrated assessment of changes in freshwater inflow to the Arctic Ocean. Journal of Geophysical Research 115: D12116.

    Article  Google Scholar 

  • Dyurgerov, M.B., and C.L. Carter. 2004. Observational evidence of increases in freshwater inflow to the Arctic Ocean. Arctic, Antarctic, and Alpine Research 36: 117–122.

    Article  Google Scholar 

  • Finnis, J., J.J. Cassano, M. Holland, M.C. Serreze, and P. Uotila. 2009a. Synoptically forced hydroclimatology of major Arctic watersheds in general circulation models; Part 1: The Mackenzie River Basin. International Journal of Climatology 29: 1226–1243.

    Article  Google Scholar 

  • Finnis, J., J.J. Cassano, M. Holland, M.C. Serreze, and P. Uotila. 2009b. Synoptically forced hydroclimatology of major Arctic watersheds in general circulation models, part 2: Eurasian watersheds. International Journal of Climatology 29: 1244–1261.

    Article  Google Scholar 

  • Hannerz, F., and G. Destouni. 2006. Spatial characterization of the Baltic Sea drainage basin and its unmonitored catchments. Ambio 35: 214–219.

    Article  Google Scholar 

  • Heathcote, I.W. 1998. Integrated watershed management: Principles and practice. New York: Wiley.

    Google Scholar 

  • Jarsjö, J., Y. Shibuo, and G. Destouni. 2008. Spatial distribution of unmonitored inland water discharges to the sea. Journal of Hydrology 348: 59–72.

    Article  Google Scholar 

  • Kattsov, V.M., J.E. Walsh, W.L. Chapman, V.A. Govorkova, T.V. Pavlova, and X. Zhang. 2007. Simulation and projection of Arctic freshwater budget components by the IPCC AR4 global climate models. Journal of Hydrometeorolgy 8: 571–589.

    Article  Google Scholar 

  • Lammers, R.B., A.I. Shiklomanov, C.J. Vörösmarty, B.M. Fekete, and B.J. Peterson. 2001. Assessment of contemporary Arctic river runoff based on observational discharge records. Journal of Geophysical Research 106: 3321–3334.

    Article  Google Scholar 

  • Lange, M. 2008. Assessing climate change impacts in the European north. Climatic Change 87: 7–34.

    Article  Google Scholar 

  • Lawrence, D.M., and A.G. Slater. 2005. A projection of severe near-surface permafrost degradation during the 21st century. Geophysical Research Letters 32: L24401.

    Article  Google Scholar 

  • Lyon, S., and G. Destouni. 2009. Changes in catchment-scale recession flow properties in response to permafrost thawing in the Yukon River Basin. International Journal of Climatology. doi:10.1002/joc.1993.

  • Lyon, S.W., G. Destouni, R. Giesler, C. Humborg, M. Mörth, J. Seibert, J. Karlsson, and P.A. Troch. 2009. Estimation of permafrost thawing rates in a sub-arctic catchment using recession flow analysis. Hydrology and Earth System Sciences 13: 595–604.

    Article  Google Scholar 

  • McClelland, J.W., S. Déry, B.J. Peterson, R.M. Holmes, and E.F. Wood. 2006. A pan-arctic evaluation of changes in river discharge during the latter half of the 20th century. Geophysical Research Letters 33: L06715.

    Article  Google Scholar 

  • McClelland, J.W., R.M. Holmes, B.J. Peterson, and M. Stieglitz. 2004. Increasing river discharge in the Eurasian Arctic: Consideration of dams, permafrost thaw, and fires as potential agents of change. Journal of Geophysical Research 109: D18102.

    Article  Google Scholar 

  • Milliman, J., K. Farnsworth, P. Jones, K. Xu, and L. Smith. 2008. Climatic and anthropogenic factors affecting river discharge to the global ocean, 1951–2000. Global Planetary Change 62: 187–194.

    Article  Google Scholar 

  • Mitchell, T.D., and P.D. Jones. 2005. An improved method of constructing a database of monthly climate observations and associated high-resolution grids. International Journal of Climatology 25: 693–712.

    Article  Google Scholar 

  • Pahl-Wostl, C. 2007. Transitions towards adaptive management of water facing climate and global change. Water Resources Management 21: 49–62.

    Article  Google Scholar 

  • Peterson, B.J., R.M. Holmes, J.W. McClelland, C.J. Vörösmarty, R.B. Lammers, A.I. Shiklomanov, I.A. Shiklomanov, and S. Rahmstorf. 2002. Increasing river discharge to the Arctic Ocean. Science 298: 2171–2173.

    Article  CAS  Google Scholar 

  • Peterson, B.J., J.W. McClelland, R. Curry, R.M. Holmes, J.E. Walsh, and K. Aagaard. 2006. Trajectory shifts in the Arctic and Subarctic freshwater cycle. Science 313: 1061–1066.

    Article  CAS  Google Scholar 

  • Rawlins, M.A., M.C. Serreze, R. Schroeder, Z. Xiangdong, and K.C. McDonald. 2009a. Diagnosis of the record discharge of Arctic-draining Eurasian rivers in 2007. Environmental Research Letters 4: 045011.

    Article  Google Scholar 

  • Rawlins, M.A., H. Ye, D. Yang, A. Shiklomanov, and K.C. McDonald. 2009b. Divergence in seasonal hydrology across northern Eurasia: Emerging trends and water cycle linkages. Journal of Geophysical Research 114: D18119.

    Article  Google Scholar 

  • Serreze, M.C., M.P. Clark, and D.H. Bromwich. 2003. Monitoring precipitation over the Arctic terrestrial drainage system: Data requirements, shortcomings, and applications of atmospheric reanalysis. Journal of Hydrometeorology 4: 387–407.

    Article  Google Scholar 

  • Serreze, M.C., M.P. Clark, A.J. Etringer, T. Zhang, D.H. Bromwich, and R. Lammers. 2002. the large-scale hydro-climatology of the terrestrial Arctic drainage system. Journal of Geophysical Research 107: 8160.

    Article  Google Scholar 

  • Shibuo, Y., J. Jarsjö, and G. Destouni. 2007. Hydrological responses to climate change and irrigation in the Aral Sea drainage basin. Geophysical Research Letters 34: L21406.

    Article  Google Scholar 

  • Shiklomanov, A.I., and R.B. Lammers. 2009. Record Russian river discharge in 2007 and the limits of analysis. Environmental Research Letters 4: 045015.

    Article  Google Scholar 

  • Vörösmarty, C.J., B.M. Fekete, M. Meybeck, and R.B. Lammers. 2000. Global system of rivers: Its role in organizing continental land mass and defining land-to-ocean linkages. Global Biogeochemical Cycles 14: 599–622.

    Article  Google Scholar 

  • Vörösmarty, C.J., L.D. Hinzman, B.J. Peterson, D.H. Bromwich, L.C. Hamilton, J. Morison, V.E. Romanovsky, M. Sturm, et al. 2001. The hydrologic cycle and its role in Arctic and global environmental change: A rationale and strategy for synthesis study. Fairbanks, AK: Arctic Research Consortium of the U.S.

    Google Scholar 

  • White, D., L. Hinzman, L. Alessa, J. Cassano, M. Chambers, K. Falkner, J. Francis, W.J. Gutowski, et al. 2007. The arctic freshwater system: Changes and impacts. Journal of Geophysical Research 112: G04S54.

    Article  Google Scholar 

  • Yang, D., D. Kane, Z. Zhang, D. Legates, and B. Goodison. 2005. Bias corrections of long-term (1973–2004) daily precipitation data over the northern regions. Geophysical Research Letters 32: L19501.

    Article  Google Scholar 

  • Yang, D., and T. Ohata. 2001. A bias-corrected Siberian regional precipitation climatology. Journal of Hydrometeorology 2: 122–139.

    Article  Google Scholar 

Download references

Acknowledgments

This study has been supported by the Swedish research councils VR and Formas. The authors thank two anonymous reviewers for insightful comments that have improved the manuscript.

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Correspondence to Arvid Bring.

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Bring, A., Destouni, G. Relevance of Hydro-Climatic Change Projection and Monitoring for Assessment of Water Cycle Changes in the Arctic. AMBIO 40, 361–369 (2011). https://doi.org/10.1007/s13280-010-0109-1

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  • DOI: https://doi.org/10.1007/s13280-010-0109-1

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