Skip to main content

Advertisement

Log in

Climate Variability-Observations, Reconstructions, and Model Simulations for the Atlantic-European and Alpine Region from 1500-2100 AD

  • Published:
Climatic Change Aims and scope Submit manuscript

Abstract

A detailed analysis is undertaken of the Atlantic-European climate using data from 500-year-long proxy-based climate reconstructions, a long climate simulation with perpetual 1990 forcing, as well as two global and one regional climate change scenarios. The observed and simulated interannual variability and teleconnectivity are compared and interpreted in order to improve the understanding of natural climate variability on interannual to decadal time scales for the late Holocene. The focus is set on the Atlantic-European and Alpine regions during the winter and summer seasons, using temperature, precipitation, and 500 hPa geopotential height fields. The climate reconstruction shows pronounced interdecadal variations that appear to “lock” the atmospheric circulation in quasi-steady long-term patterns over multi-decadal periods controlling at least part of the temperature and precipitation variability. Different circulation patterns are persistent over several decades for the period 1500 to 1900. The 500-year-long simulation with perpetual 1990 forcing shows some substantial differences, with a more unsteady teleconnectivity behaviour. Two global scenario simulations indicate a transition towards more stable teleconnectivity for the next 100 years. Time series of reconstructed and simulated temperature and precipitation over the Alpine region show comparatively small changes in interannual variability within the time frame considered, with the exception of the summer season, where a substantial increase in interannual variability is simulated by regional climate models.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Appenzeller C, Stocker TF and Anklin, M. (1998), ‘North Atlantic Oscillation dynamics recorded in Greenland ice cores’, Science 282:446–449

    Article  Google Scholar 

  • Arakawa A and Lamb VR (1981), ‘A potential enstrophy and energy conserving scheme for the shallow water equations’, Mon. Wea. Rev. 109:18–36

    Article  Google Scholar 

  • Bauer E, Claussen M, Brovkin, V. and Huenerbein, A. (2003), ‘Assessing climate forcings of the Earth system for the past millennium’, Geophys. Res. Lett. 30. DOI:10.1029/2002GL016639

  • Begert M, Schlegel T and Kirchhofer, W. (2005), ‘Homoteneous temperature and precipitation series of Switzerland from 1864 to 2000’, Int. J. Climatol. 25: 65–80

    Google Scholar 

  • Blackmon ML, Boville B, Bryan F, Dickinson R, Gent, Kiehl, J. Moritz R, Randall D, Shukla J, Solomon S, Bonan G, Doney S, Fung I, Hack J, Hunke E, Hurrell J, Kutzbach J, Meehl J, Otto-Bliesner B, Saravanan R, Schneider EK, Sloan L, Spall M, Taylor K, Tribbia J and Washington, W. (2001), ‘The Community Climate System Model,’ Bull. Am. Meteorol. Soc. 82:2357–2388

    Article  Google Scholar 

  • Böohm R, Auer I, Brunetti M, Maugeri M, Nanni T and Schöoner, W. (2001), ‘Regional temperature variability in the European Alps: 1760–1998 from homogenized instrumental series’, Int. J. Climatol. 21:1779–1801

    Article  Google Scholar 

  • Bradley, R and Jones PD (1993), “Little Ice Age”xs summer temperature variations: Their nature and relevance to recent global warming trends’, The Holocene 3:367–376

    Google Scholar 

  • Briffa KR, Jones PD, Bartholin TS, Eckstein D, Schweingruber FH, Karlen W, Zetterberg P and Eronen, M (1992), ‘Fennoscandian summers from AD 500: Temperature changes on short and long timescales’, Clim. Dyn. 7:111–119

    Article  Google Scholar 

  • Briffa KR, Osborn TJ, Schweingruber FH, Harris IC, Jones PD, Shiyatov SG and Vaganov EA (2001), ‘Low-frequency temperature variations from a northern tree-ring density network’, J. Geophys. Res. 106:2929–2941

    Article  Google Scholar 

  • Büuntgen U, Esper J, Frank DC, Nicolussi, K and Schmidhalter, M (2005), ‘A 1052-year tree-ring proxy for Alpine summer temperatures’, Clim. Dyn. in press

  • Casty C, Handorf D, Raible CC, Luterbacher J, Weisheimer A, Xoplaki, E Gonzalez-Rouco JF, Dethloff K and Wanner, H (2005a) ‘Recurrent climate winter regimes in reconstructed and modelled 500 hPa geopotential height fields over the North Atlantic-European sector 1659–1990’, Clim. Dyn. 24: 809–822, DOI:10.1007/s00382-004-0496-8

    Google Scholar 

  • Casty C, Wanner, H Luterbacher, J Esper, J and Böohm, R (2005b) ‘Temperature und precipitation variability in the European Alps since 1500’, Int. J. Climatol. 25:1855–1880

  • Cheng W, Beck R and Rooth, C (2004), ‘Multi-decadal thermohaline variability in an ocean-atmosphere general circulation model’, Clim. Dyn. 22: 573–590, DOI:10.1007/s00382-004-400-6

    Google Scholar 

  • Cook ER, D’Arrigo RD and Mann ME (2002), ‘A well-verified, multiproxy reconstruction of the winter North Atlantic Oscillation index since AD 1400’, J. Climate 15:1754–1764

    Article  Google Scholar 

  • Cook ER, Esper, J and D’Arrigo RD (2004), ‘Extra-tropical Northern Hemisphere land temperature variability over the past 1000 years’, Quat. Sci. Rev 23:2063–2074

    Article  Google Scholar 

  • Crowley TJ (2000), ‘Causes of climate change over the past 1000 years’, Science 289:270–277

    Article  Google Scholar 

  • Düunkeloh, A and Jacobeit, J (2003), ‘Circulation dynamics of Mediterranean precipitation variability 1948–98’, Int. J. Climatol. 23:1843–1866

    Article  Google Scholar 

  • Esper, J (2000), ‘Long term tree-ring variations in Junipers at the upper timberline in the Karakorum (Pakistan)’, The Holocene 10:253–260

    Article  Google Scholar 

  • Esper J, Cook ER and Schweingruber FH (2002a) ‘Low-frequency signals in long tree-line chronologies for reconstructing past temperature variability’, Science 295:2250–2253

    Article  Google Scholar 

  • Esper J, Frank DC and Wilson RJ, S (2004), ‘Climate reconstructions: Low-frequency ambition and high-frequency ratification’, EOS TransAm, Geophys Union 85:113,120

    Google Scholar 

  • Esper J, Schweingruber FH and Winiger, M (2002b) ‘1300 years of climate history for Western Central Asia inferred from tree-rings’, The Holocene 12:267–277

    Article  Google Scholar 

  • Esper J, Shiyatov SG, Mazepa VS, Wilson RJ, S, Graybill DA and Funkhouser, G (2003), ‘Temperature-sensitive Tien Shan tree ring chronologies show multi-centennial growth trends’, Clim. Dyn. 21:699–706

    Article  Google Scholar 

  • Frank DC and Esper, J (2005), ‘Temperature reconstructions and comparison with instrumental data from a tree-ring network for the European Alps’, Int. J. Climatol. 25:1437–1454

    Google Scholar 

  • Frei C, Christensen JH, Deque M, Jacob D, Jones RG and Vidale PL (2003), ‘Daily precipitation statistics in regional climate models: Evaluation and intercomparison for the European Alps’, J. Geophys. Res. 108(D3), 4124, DOI: 10.1029/2002JD002287

  • Gibson JK, Kallberg P, Uppala S, Hernandez A, Nomura A and Serrano, A (1999), ‘ERA description, Version 2’ Technical report, ERA-15 Project Report Series, No 1, ECMWF, Reading, UK 74pp

  • Goosse H, Crwoley TJ, Zorita E, Ammann H, Renssen CM and Driesschaert, E (2005), Modelling the climate of the last millennium: What causes the differences between simulations, Geophys. Res. Lett. 32:L06710, DOI:10.1029/2005GL022368

    Google Scholar 

  • Gröotzner A, Latif M and Barnett TP (1998), ‘A decadal cycle in the North Atlantic ocean as simulated by the ECHO coupled GCM’, J. Climate 11:831–847

    Article  Google Scholar 

  • Guiot J, Nicault A, Rathgeber C, Edouard J, Guibal F, Pichard G, Till C (2005) Last-millennium summertemperature variations in western Europe based on proxy data. Holocene 15:489–500

    Google Scholar 

  • Hagemann, S and Duemenil-Gates, L (2001), ‘Validation of the hydrological cycle of ECMWF and NCEP reanalyses using the MPI hydrological discharge model’, J. Geophys. Res. 106:1503–1510

    Article  Google Scholar 

  • Hansen J, Lacis A, Ruedy R and Sato, M (1992), ‘Potential climate impact of Mount Pinatubo eruption’, Geophys. Res. Lett. 19:215–218

    Google Scholar 

  • Hurrell JW (1995), ‘Decadal trends in the North Atlantic Oscillation: Regional temperatures and precipitation’, Science 269:676–679

    Article  Google Scholar 

  • Hurrell JW, Kushnir Y, Ottersen G and Visbeck, M (2003), The North Atlanitc Oscillation: Climate Significance and Environmental Impact:Vol. 134. Geophysical Monograph Series. 279pp

  • Hurrell JW and Loon HV (1997), ‘Decadal variations in climate associated with the North Atlantic Oscillation’, Clim. Change 36:301–326

    Article  Google Scholar 

  • IPCC (2001), Climate Change 2001: The Scientific Basis. Cambridge, UK and New York, NY, USA: Cambridge University Press. Contribution of Working Group I to the Third Assessment Report of the Intergovenmental Panel on Climate Change, 881pp

    Google Scholar 

  • Jacobeit J, Wanner H, Luterbacher J, Beck C, Philipp A and Sturm, K (2003), ‘Atmospheric circulation variability in the North-Atlantic-European area since the mid-seventeenth century’, Clim. Dyn. 20:341–352

    Google Scholar 

  • Jones PD, Briffa KR, Barnett TP and Tett SF, B (1998), ‘High-resolution palaeoclimatic records for the last millennium: Interpretation, integration and comparison with General Circulation Model control-run temperatures’, The Holocene 8:455–471

    Article  Google Scholar 

  • Jones PD, Briffa KR and Osborn TJ (2003), ‘Changes in the Northern Hemisphere annual cycle: Implications for paleoclimatology’, J. Geophys. Res. 108. DOI:10.1029/2003JD003695

  • Jones PD and Mann ME (2004), ‘Climate over past millennia’, Rev. Geophys. 42:RG2002, DOI:10.1029/2003RG000143

  • Jones RG, Murphy JM, Hassell DC and Taylor, R (2001), ‘Ensemble mean changes in a simulation of the European climate of 2071–2100 using the new Hadley Centre Regional modelling system HadAM3H/HadRM3H’, Technical report, Hadley Centre, Exeter, UK available at http://prudence.dmi.dkl

  • Kalnay E, Kanamitsu M, Kistler R, Collins W, Coauthors (1996), ‘The NCEP/NCAR 40 year reanalysis project’, Bull. Amer. Meteor. Soc. 77:437–471

  • Kiehl JT, Hack JJ, Bonan GB, Boville BA, Williamson DL and Rasch PJ (1998), ‘The National Center for Atmospheric Research Community Climate Model: CCM3’, J. Clim. 11:1131–1149

    Article  Google Scholar 

  • Kistler R, Kalnay E, Collins W, Saha S, Coauthors (2001), ‘The NCEP-NCAR 50-year reanalysis: Monthly means CD-ROM and documentation’, Bull. Amer. Meteor. Soc. 77:437–471

  • Latif M, Roeckner E, Botzet M, Esch M, Haak H, Hagemann S, Jungclaus J, Legutke S, Marsland S and Mikolajewicz, U (2004), ‘Reconstructing, monitoring and predicting multidecadal-scale changes in the North Atlantic Thermohaline Circulation with sea surface temperature’, J. Clim. 17:1606–1614

    Article  Google Scholar 

  • Luterbacher J, Dietrich D, Xoplaki E, Grosjean M and Wanner, H (2004), ‘European seasonal and annual temperature variability, trends and extremes since 1500’, Science 303:1499–1503

    Article  Google Scholar 

  • Luterbacher J, Rickli R, Xoplaki E, Tinguely C, Beck C, Pfister C and Wanner, H (2001), ‘The late Maunder Minimum (1675–1715) — a key period for studying decadal scale climatic change in Europe’, Clim. Change 49:441–462

    Article  Google Scholar 

  • Luterbacher J, Schmutz C, Gyalistras D, Xoplaki E and Wanner, H (1999), ‘Reconstruction of monthly NAO and EU indices back to AD 1675’, Geophys. Res. Lett. 26:2745–2748

    Article  Google Scholar 

  • Luterbacher J, Xoplaki E, Dietrich D, Jones PD, Davies TD, Portis D, Gonzalez-Rouco JF, von Storch H, Gyalistras D, Casty, C and Wanner, H (2002a) ‘Extending North Atlantic Oscillation reconstructions back to 1500’, Atmos. Sci. Lett. 2:114–124

    Article  Google Scholar 

  • Luterbacher J, Xoplaki E, Dietrich D, Rickli R, Jacobeit J, Beck C, Gyalistras D, Schmutz C and Wanner, H (2002b) ‘Reconstruction of sea level pressure fields over the Eastern North Atlantic and Europe back to 1500’, Clim. Dyn. 18:545–561

    Google Scholar 

  • Mann ME, Bradley RS and Hughes MK (1998), ‘Global-scale temperature patterns and climate forcing over the past six centuries’, Nature 392:779–787

    Article  Google Scholar 

  • Mann ME, Rutherford S, Wahl ER and Ammann CM (2005), ‘Testing the fidelity of methodologies used in ‘proxy’-based reconstructions of past climate’, J. Clim. 18:4097–4107

    Google Scholar 

  • Marshall J, Johnson, H and Goodman, J (2001), ‘A study of the interaction of the North Atlantic Oscillation with ocean circulation’, J. Clim. 14:1399–1421

    Article  Google Scholar 

  • Marsland SJ, Haak H, Jungclaus JH, Latif M and Roeske, F (2003), ‘The Max-Planck-Institute global ocean/sea ice model with orthogonal curvilinear coordinates’, Ocean Model. 5:91–127

    Article  Google Scholar 

  • Meehl GA, Washington WM, Wigley TM, L, Arblaster JM and Dai, A (2003), ‘Solar and greenhouse gas forcing and climate response in the twentieth century’, J. Clim. 16:426–444

    Article  Google Scholar 

  • Mitchell TD, Carter TR, Jones PD, Hulme M and New, M (2004), ‘A comprehensive set of high-resolution grids of monthly climate for Europe and the globe: The observed record (1901–2000) and 16 scenarios (2001–2100)’, Technical Report Working Paper 55, Tyndall Center for Climate Change Research

  • Moberg A, Sonechkin DM, Holmgren K, Datsenko NW and Karlen, W (2005), ‘Highly variable Northern Hemisphere temperatures reconstructed from low- and high-resolution proxy data’, Nature 433:613–617

    Article  Google Scholar 

  • New M, Hulme M and Jones PD (2000), ‘Representing twentieth-century space-time climate variability. Part II: Development of 1901–1996 monthly grids of terrestrial surface climate’, J. Clim. 13:2217–2238

    Article  Google Scholar 

  • Overpeck J, Hughen K, Hardy D, Bradley R, Case R, Douglas M, Finney B, Gajewski K, Jacoby G, Jennings A, Lamoureux S, Lasca A, MacDonald G, Moore J, Retelle M, Smith S, Wolfe A and Zielinski, G (1997), ‘Arctic environmental change of the last four centuries’, Science 278:1251–1256

    Article  Google Scholar 

  • Pauling A, Luterbacher, J Casty C and Wanner, H (2006), ‘500 years of gridded high-resolution precipitation reconstructions over Europe and the connection to large-scale circulation’, Clim. Dyn. 26:387–405

    Google Scholar 

  • Pfister, C (1992), Monthly Temperature and Precipitation in Central Europe 1525–1979: Quantifying Documentary Evidence on Weather and its Effects. In: Climate since A.D. 1500, Bradley, RS. and Jones, PD. (eds). Routledge: London

    Google Scholar 

  • Pope DV, Gallani M, Rowntree R and Stratton, A (2000), ‘The Impact of new physical parameterizations in the Hadley Centre climate model HadAM3’, Clim. Dyn. 16:123–146

    Article  Google Scholar 

  • Raible CC, Luksch, U and Fraedrich, K (2004), ‘Precipitation and Northern Hemisphere Regimes’, Atmos. Sci. Lett. 5:43–55, DOI:10.1016/j.atmoscilet.2003.12.001

  • Raible CC, Luksch U, Fraedrich K and Voss. R. (2001), ‘North Atlantic decadal regimes in a coupled GCM simulation’, Clim. Dyn. 18:321–330

    Article  Google Scholar 

  • Raible CC, Stocker TF, Yoshimori M, Renold M, Beyerle U, Casty C and Luterbacher, J (2005), ‘Northern Hemispheric trends of pressure indices and atmospheric circulation patterns in observations, reconstructions and coupled GCM simulations’, J. Clim. 18:3968–3982

    Google Scholar 

  • Renold M, Beyerle U, Raible CC, Knutti R, Stocker TF and Craig, T (2004), ‘Climate modeling with a Linux cluster’, EOS TransAm, Geophys Union 85:292

    Google Scholar 

  • Rind D, Lean, J and Healy, R (1999), ‘Simulated time-dependent climate response to solar radiative forcing since 1600’, J. Geophys. Res. 104:1973–1990

    Article  Google Scholar 

  • Roeckner E, Bäuml G, Bonaventura L, Brokopf R, Esch M, Giorgetta M, Hagemann S, Kirchner I, Kornblueh L, Manzini E, Rhodin A, Schlese U, Schulzweida U and Tompkins, A (2003), ‘The atmospheric general circulation model ECHAM5: Part I: Model description’, Technical Report 349, Max-Planck-Institut, Hamburg, Germany

  • Schäar C, Lüuthi D, Beyerle U and Heise, E (1999), ‘The soil-precipitation feedback: A process study with a regional climate model’, J. Clim. 12:722–741

    Article  Google Scholar 

  • Schäar C, Vidale PL, Lüuthi D, Häaberli C, Liniger MA and Appenzeller, C (2004), ‘The role of increasing temperature variability in European summer heatwaves’, Nature 427:332–336

    Article  Google Scholar 

  • Schmidli J, Schmutz C, Frei C, Wanner H and Schär, C (2002), ‘Mesoscale precipitation variability in the Alpine region during the 20th century’, Int. J. Climatol. 22:1049–1074

    Article  Google Scholar 

  • Shindell DT, Schmidt GA, Miller RL and Mann ME (2003), ‘Volcanic and solar forcing of climate change during the preindustrial era’, J. Clim. 16:4094–4107

    Article  Google Scholar 

  • Shindell DT, Schmidt GA, Miller RL and Rind., D. (2001), ‘Northern Hemisphere winter climate response to greenhouse gas, ozone, solar and volcanic forcing’, J. Geophy. Res. 106:7193–7210

    Article  Google Scholar 

  • Terray L, Valcke S and Piacentini, A (1998), ‘The OASIS coupler user guide, version 2.2’, Technical Report TR/CMGC/98–05, CERFACS

  • Ulbrich, U and Christoph, M (1999), ‘A shift of the NAO and increasing storm track activity over Europe due to anthropogenic Greenhouse gas forcing’, Clim. Dyn. 15:551–559

    Article  Google Scholar 

  • Vidale PL, Lüuthi D, Frei C, Seneviratne SI and Schäar, C (2003), ‘Predictability and uncertainty in a regional climate model’, J. Geophys. Res. 108. DOI:10.1029/2002JD002810

  • Vinther BM, Johnsen SJ Andersen KK, Clausen HB and Hansen AW (2003), ‘NAO signal recorded in the stable isotopes of Greenland ice cores’, Geophys. Res. Lett. 30(7), 1387, DOI: 10.1029/2002GL016193

  • von Storch H, Zorita E, Jones J, Dimitriev Y, Gonzalez-Rouco F and Tett, S (2004), ‘Reconstructing past climate from noisy data’, Science 306:679–682, DOI:10.1126/science.1096109

    Google Scholar 

  • Wallace JM and Gutzler DS (1981), ‘Teleconnections in the geopotential height field during the Northern Hemisphere winter’, Mon. Wea. Rev. 109:782–812

    Google Scholar 

  • Wanner H, Bröonnimann S, Casty C, Gyalistras D, Luterbacher J, Schmutz C, Stephenson DB and Xoplaki, E (2001), ‘North Atlantic Oscillation - concepts and studies’, Survey Geophys. 22:321–382

    Article  Google Scholar 

  • Wild M, Calanca P, Scherrer SC and Ohmura, A (2003), ‘Effects of polar ice sheets on global sea level in high-resolution greenhouse scenarios’, J. Geophys. Res. 108. DOI:10.1029/2002JD002451

  • Wolff JO, Maier-Reimer E and Legutke, S (1997), ‘The Hamburg Ocean primitive equation model HOPE’, Technical Report 13, Deutsches Klimarechenzentrum, Hamburg, Germany

  • Xoplaki E, Gonzalez-Rouco JF, Luterbacher J and Wanner, H (2004), ‘Wet season Mediterranean precipitation variability: Influence of large-scale dynamics and trends’, Clim. Dyn. 23:63–78

    Article  Google Scholar 

  • Xoplaki E, Luterbacher J, Paeth H, Dietrich D, Steiner N, Grosjean M, Wanner H (2005) European spring and autumn temperature variability and change of extremes over the last half millennium. Geophys Res Lett 32:L15713:DOI: 10.1029/2005GL023424

  • Yoshimori M, Stocker TF, Raible CC and Renold, M (2005), ‘Internal and externally-forced varibilities in an ensemble of climate simulations of the Maunder Minimum’, J. Clim. 18:4253–4270

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Raible, C.C., Casty, C., Luterbacher, J. et al. Climate Variability-Observations, Reconstructions, and Model Simulations for the Atlantic-European and Alpine Region from 1500-2100 AD. Climatic Change 79, 9–29 (2006). https://doi.org/10.1007/s10584-006-9061-2

Download citation

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10584-006-9061-2

Keywords

Navigation