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An assessment of human versus climatic impacts on Holocene soil erosion in NE Peloponnese, Greece

Published online by Cambridge University Press:  20 January 2017

M. Fuchs*
Affiliation:
Lehrstuhl Geomorphologie, Universität Bayreuth, D-95440 Bayreuth, Germany
*
*Fax: +49 21 552314. E-mail address:markus.fuchs@uni-bayreuth.de

Abstract

Soil erosion is a natural geomorphological process, which can be triggered by both natural (climate, tectonics, or both) and anthropogenic (e.g., agriculture) perturbation of the ecosystem. Evidence has accrued that the Holocene climate experienced large fluctuations in amplitude and suggestions of human impact on the ecosystem provided by the Neolithic revolution dating back to the early Holocene have been made. The question of whether man or climate was the dominant factor responsible for Holocene soil erosion remains unresolved. To resolve the reasons for Holocene sediment redistribution, high-resolution chronometric data on sediments derived from colluvial and alluvial archives from southern Greece were obtained and combined with available archaeological and paleoclimatic data from the eastern Mediterranean. These data show a significant correlation between sedimentation rates and settlement history. Climatic fluctuations are only weakly correlated with sedimentation history. The results show high sedimentation rates during the Early Neolithic (7th millennium BC) in southern Greece, suggesting that Holocene soil erosion was triggered by human activity and then amplified by enhanced precipitation. This would explain the high sedimentation rates during the Early Neolithic in connection with enhanced precipitation in the eastern Mediterranean, which continued until the mid-Holocene.

Type
Research Article
Copyright
University of Washington

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References

Ariztegui, D., Asioli, A., Lowe, J.J., Trincardi, F., Vigliotti, L., Tamburini, F., Chondrogianni, C., Accorsi, C.A., Mazzanti, M.B., Mercuri, A.M., Van der Kaars, S., McKenzie, J.A., and Oldfield, F. Palaeoclimate and the formation of sapropel S1: inferences from Late Quaternary lacustrine and marine sequences in the central Mediterranean region. Palaeogeography, Palaeoclimatology, Palaeoecology 158, (2000). 215240.Google Scholar
Atherden, M.A., and Hall, J.A. Holocene Pollen Diagrams from Greece. Historical Biology 9, (1994). 117130.Google Scholar
Bar-Matthews, M., Aylon, A., Mabs, G., Matthews, A., and Hawkesworth, C.J. Sea–land oxygen isotopic relationship from planktonic foraminifera and speleothems in the Eastern Mediterranean region and their implication for paleorainfall during interglacial intervals. Geochimica et Cosmochimica Acta 67, (2003). 31813199.Google Scholar
Battarbee, R.W., Gasse, F., and Stickley, C.E. Past Climate Variability through Europe and Africa. (2004). Springer, Dordrecht.CrossRefGoogle Scholar
Bintliff, J. Natural environment and human settlement in Greece. British Archaeological Reports vol. 28, (1977). British Archaeological Museum, Oxford.Google Scholar
Bintliff, J. Time, process and catastrophism in the study of Mediterranean alluvial history: a review. World Archaeology 33, (2002). 417435.Google Scholar
Brückner, H. Man's impact on the evolution of the physical environment in the Mediterranean region in historical times. GeoJournal 13, (1986). 717.Google Scholar
Brunsden, D. Landscape sensivity and change. Transactions of the Institute of British Geographers. New Series 4, (1979). 463484.Google Scholar
Cacho, I., Grimalt, J.O., and Canals, M. Response of the Western Mediterranean Sea to rapid climatic variability during the last 50,000 years: a molecular biomarker approach. Journal of Marine Systems 33, (2002). 253272.Google Scholar
Casselmann, C., Fuchs, M., Ittameier, D., Maran, J., and Wagner, G.A. Interdisziplinäre landschaftsarchäologische Forschungen im Becken von Phlious, 1998–2002. Archäologischer Anzeiger 1, (2004). 157.Google Scholar
Cherry, J.F., Davis, J.L., Demitrack, A., Mantzourani, E., Strasser, T.F., and Talalay, L.E. Archaeological Survey in an Artifact-Rich Landscape: a Middle Neolithic example from Nemea, Greece. American Journal of Archaeology 92, (1988). 159176.CrossRefGoogle Scholar
Chorley, R.J., Schumm, S.A., and Sugden, D.E. Geomorphology. (1984). Methuen, London.Google Scholar
Cullen, H.M., deMenocal, P.B., Hemming, S., emming, G., Brown, F.H., Guilderson, T., and Sirocko, F. Climate change and the collapse of the Akkadian empire: evidence from the deep sea. Geology 28, (2000). 379382.2.0.CO;2>CrossRefGoogle Scholar
Davidson, D.A. Soil erosion in Greece During the First and Second Millennia B.C.. Research Seminar Series vol. 2, (1977). Department of Geography, University of Strathclyde, Google Scholar
Davidson, D.A., Renfrew, C., and Tasker, C. Erosion and prehistory in Melos: a preliminary note. Journal of Archaeological Science 3, (1976). 219227.Google Scholar
deMenocal, P., Ortiz, J., Guilderson, T., Adkins, J., Sarnthein, M., Baker, L., and Yarusinsky, M. Abrupt onset and termination of the African Humid Period: rapid climate responses to gradual insolation forcing. Quaternary Science Reviews 19, (2000). 347361.Google Scholar
Faust, D., Zielhofer, Ch., Escudero, R.B., and del Olmo, F.D. High-resolution fluvial record of late Holocene geomorphic change in northern Tunisia: climatic or human impact?. Quaternary Science Reviews 23, (2004). 17571775.CrossRefGoogle Scholar
Fleitmann, D., Burns, S.J., Neff, U., Mudelsee, M., Mangini, A., and Matter, A. Palaeoclimatic interpretation of high-resolution oxygen isotope profiles derived from annually laminated speleothems from Southern Oman. Quaternary Science Reviews 23, (2004). 935945.Google Scholar
Fuchs, M., and Wagner, G.A. The Chronostratigraphy and Geoarchaeological significance of an alluvial geoarchive: comparative OSL and AMS 14C dating from Greece. Archaeometry 47, (2005). 849860.Google Scholar
Fuchs, M., Lang, A., and Wagner, G.A. The History of Holocene soil erosion in the Phlious Basin, NE-Peloponnese, Greece, provided by optical dating. Holocene 14, (2004). 334345.Google Scholar
Grosjean, M., Cartajena, I., Geyh, M.A., and Nunez, L. From proxy data to paleoclimate interpretation: the mid-Holocene paradox of the Atacama Desert, northern Chile. Palaeogeography, Palaeoclimatology, Palaeoecology 194, (2003). 247258.Google Scholar
Harvey, A.M. Coupling between hillslopes and channels in upland fluvial systems: implications for landscape sensitivity, illustrated from the Howgill Fells, northwest England. Catena 42, (2001). 225250.Google Scholar
Harvey, A.M. Effective timescales of coupling within fluvial systems. Geomorphology 44, (2002). 1752001.Google Scholar
Houben, P. Spatio-temporally variable response of fluvial systems to Late Pleistocene climate change: a case study from central Germany. Quaternary Science Reviews 22, (2003). 21252140.Google Scholar
Jahns, S. The Holocene history of vegetation and settlement at the coastal site of Lake Voulkaria in Archanania, western Greece. Vegetation History and Archaebotany 14, (2005). 5566.Google Scholar
Kallel, N., Duplessy, J.-C., Labeyrie, L., Fontugne, M., Paterne, M., and Montacer, M. Mediterranean pluvial periods and sapropel formation over the last 200 000 years. Palaeogeography, Palaeoclimatology, Palaeoecology 157, (2000). 4558.CrossRefGoogle Scholar
Kilian, K. Zum Ende der Mykenischen Epoche in der Argolis. Jahrbuch des Römisch-Germanischen Zentralmuseums Mainz 27, (1980). 166195.Google Scholar
Lang, A., Bork, H.R., Mäckel, R., Preston, N., Wunderlich, J., and Dikau, R. Changes in sediment flux and storage within a fluvial system—Some examples from the Rhine catchment. Hydrological Processes 17, (2003). 33213334.Google Scholar
Lespez, L. Geomorphic responses to long-term land use changes in Eastern Macedonia (Greece). Catena 51, (2003). 181208.CrossRefGoogle Scholar
Lewin, J., and Macklin, M.G. Preservation potential for Late Quaternary river alluvium. Journal of Quaternary Science 18, (2003). 107120.Google Scholar
Morfis, A., and Zojer, H. Karst hydrology of the central and eastern Peloponnesus (Greece). Steirische Beiträge zur Hydrogeologie 37/38. 5th International Symposium on Underground Water Tracing. (1986). Springer Verlag, Vienna.Google Scholar
Pope, K.O., and van Andel, T.H. Late Quaternary alluviation and soil formation in the Southern Argolid: its history, causes and archaeological implications. Journal of Archaeological Science 11, (1984). 281306.CrossRefGoogle Scholar
Pope, R.J.J., Wilkinson, K.N., and Millington, A.C. Human and climatic impact on Late Quaternary deposition in the Sparta Basin Piedmont: evidence from alluvial fan systems. Geoarchaeology 18, (2003). 685724.CrossRefGoogle Scholar
Roberts, N., Reed, J.M., Leng, M.J., Kuzucuoglu, C., Fontugne, M., Bertaux, J., Woldring, H., Bottema, S., Black, S., Hunt, E., and Karabiyikoglu, M. The tempo of Holocene climatic change in the eastern Mediterranean region: new high-resolution crater-lake sediment data from central Turkey. Holocene 11, (2001). 721736.Google Scholar
Schilman, B., Bar-Matthews, M., Almogi-Labin, A., and Luz, B. Global climate instability reflected by Eastern Mediterranean marine records during the late Holocene. Palaeogeography, Palaeoclimatology, Palaeoecology 176, (2001). 157176.CrossRefGoogle Scholar
Stokes, S. Luminescence dating applications in geomorphological research. Geomorphology 29, (1999). 153171.Google Scholar
Urban, B., and Fuchs, M. Late Pleistocene vegetation of the basin of Phlious, NE-Peloponnese, Greece. Review of Palaeobotany and Palynology 137, (2005). 1529.CrossRefGoogle Scholar
van Andel, T.H., Zangger, E., and Demitrack, A. Land use and soil erosion in prehistoric and historical Greece. Journal of Field Archaeology 17, (1990). 379396.Google Scholar
Vita-Vinzi, C. The Mediterranean Valleys. (1969). University Press, New York.Google Scholar
Wagstaff, J.M. Buried assumptions: some problems in the interpretation of the “Younger Fill” raised by recent data from Greece. Journal of Archaeological Science 8, (1981). 247264.CrossRefGoogle Scholar
Weischet, W., and Endlicher, W. Regionale Klimatologie Teil 2. Die alte Welt. (2000). Teubner, Stuttgart.Google Scholar