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Palynology of the Last Interglacial-Glacial Cycle in Midlatitudes of Southern Chile

Published online by Cambridge University Press:  20 January 2017

Calvin J. Heusser*
Affiliation:
Department of Biology, New York University, New York, New York 10003

Abstract

Pollen and spores in stratigraphic sections located between 40 and 42°S range in age from the Holocene, through much of the Llanquihue Glaciation, to the last interglaciation. Chronology of the stratigraphy derives from some 35 14C ages and the age relations of Llanquihue Drift and related deposits. Q-Mode, rotated, principal-components analysis of four key pollen records covering the last interglacial-glacial cycle resulted in four leading components: Nothofagus dombeyi type, Gramineae, Weinmannia-Fitzroya type, and Myrtaceae. Analysis emphasizes interaction between the first two components. Loadings of Gramineae during the interglaciation are high, unlike the Holocene; Weinmannia-Fitzroya-type loadings, prominent in the Holocene, are negligible during the interglaciation. N. dombeyi type is the primary component during Llanquihue Glaciation; it becomes modified by increases of Gramineae sometime after 31,000 and before 14,000 yr B.P. and of Myrtaceae later. The Myrtaceae with Weinmannia-Fitzroya type also registers some activity around 42,000 yr B.P. Fluctuations in the belt of westerly winds, reflecting changing meteorological conditions in polar latitudes, are suggested by these data. With the belt located farther south than it is today, interglacial climate was much drier and warmer than during the Holocene; more northerly displacement of the belt obtained when climate was colder during Llanquihue Glaciation. Evidence from comparable latitudes in the Southern Hemisphere points toward a synchrony of major climatic events indicating harmonious fluctuations in the position of the westerlies.

Type
Original Articles
Copyright
University of Washington

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References

Almeyda, A.E., Sáez, S.F. 1958. Recopilación de datos climáticos de Chile y mapas sinópticos respectivos Ministerio de Agricultura Santiago.Google Scholar
Auer, V. 1933. Verschiebungen der Wald- und Steppengebiete Feuerlands in postglazialer Zeit. Acta Geographica 5. 1313.Google Scholar
Auer, V. 1958. The Pleistocene of Fuego-Patagonia. Part II. The history of the flora and vegetation. Annales Academiae Scientiarum Fennicae III, Geologica Geographica 50. 1239.Google Scholar
Bates, C.D., Coxon, P., Gibbard, P.L. 1978. A new method for the preparation of clay-rich sediment samples for palynological investigation. New Phytologist 81. 459463.Google Scholar
, A.W.H., Duplessy, J.C. 1976. Subtropical Convergence fluctuations and Quaternary climates in the middle latitudes of the Indian Ocean. Science 194. 419422.Google Scholar
Bowler, J.M., Hope, G.S., Jennings, J.N., Singh, G., Walker, D. 1976. Late Quaternary climates of Australia and New Guinea. Quaternary Research 6. 359394.Google Scholar
Brüggen, J. 1950. Fundamentos de la geología de Chile Instituto Geográfico Militar Santiago.Google Scholar
Colhoun, E.A. 1980. Quaternary fluviatile deposits from the Pieman Dam site, western Tasmania. Royal Society of London Proceedings B 207. 355384.Google Scholar
Colhoun, E.A., Goede, A. 1979. The late Quaternary deposits of Blakes Opening and the middle Huon Valley, Tasmania. Royal Society of London Philosophical Transactions B 286. 371395.Google Scholar
Dickson, M. 1972. Palynology of a late Oturi Interglacial and early Otira Glacial sequence from Sunday Creek (S51), Westland, New Zealand. New Zealand Journal of Geology and Geophysics 15. 590598.CrossRefGoogle Scholar
Dobrovolny, E., Lemke, R.W. 1961. Engineering Geology and the Chilean Earthquake of 1960. U.S. Geological Survey Professional Paper 424C. 357359.Google Scholar
Faegri, K., Iversen, J. 1975 Textbook of Pollen Analysis Hafner Press New York.Google Scholar
Frakes, L.A. 1978. Cenozoic climates: Antarctica and the Southern Ocean. In “Climatic Change and Variability. A Southern Perspective.”. Pittock, A.B., Frakes, L.A., Jenssen, D., Peterson, J.A., Zillman, J.W. 5369. Cambridge Univ. Press Cambridge.Google Scholar
Frenzel, B. 1964. Zur Pollenanalyze von Lössen. Eiszeitalter und Gegenwart 15. 539.Google Scholar
Hastenrath, S.L. 1971. On the Pleistocene snow-line depression in the arid regions of the South American Andes. Journal of Glaciology 10. 255267.Google Scholar
Hays, J.D., Lozano, J.A., Shackleton, N., Irving, G. 1976. Reconstruction of the Atlantic and western Indian Ocean sectors of the 18,000 B.P. Antarctic Ocean. In “Investigation of Late Quaternary Paleoceanography and Paleoclimatology.”. Cline, R.M., Hays, J.D. 337372. Geological Society of America Memoir 145.Google Scholar
Heusser, C.J. 1966. Late-Pleistocene pollen diagrams from the Province of Llanquihue, southern Chile. American Philosophical Society Proceedings 110. 269305.Google Scholar
Heusser, C.J. 1971 Pollen and Spores of Chile. Modern Types of the Pteridophyta, Gymnospermae, and Angiospermae Univ. of Arizona Press Tucson.Google Scholar
Heusser, C.J. 1972. On the occurrence of Lycopodium fuegianum during late-Pleistocene interstades in the Province of Osorno, Chile. Torrey Botanical Club Bulletin 99. 178194.Google Scholar
Heusser, C.J. 1974. Vegetation and climate of the southern Chilean lake district during and since the last interglaciation. Quaternary Research 4. 290315.Google Scholar
Heusser, C.J. 1976. Palynology and depositional environment of the Río Ignao nonglacial deposit, Province of Valdivia, Chile. Quaternary Research 6. 273279.Google Scholar
Heusser, C.J. 1982. Palynology of cushion bogs of the Cordillera Pelada, Province of Valdivia, Chile. Quaternary Research 17 Google Scholar
Heusser, C.J., Flint, R.F. 1977. Quaternary glaciations and environment of northern Isla Chiloé, Chile. Geology 5. 305308.Google Scholar
Heusser, C.J., Streeter, S.S. 1980. A temperature and precipitation record of the past 16,000 years in southern Chile. Science 210. 13451347.CrossRefGoogle Scholar
Heusser, C.J., Streeter, S.S., Stuiver, M. 1981. Extension of the temperature and precipitation record in southern Chile to ∼43,000 yr ago. Nature (London)in pressGoogle Scholar
Imbrie, J., Kipp, N.G. 1971. A new micropaleontological method for quantitative paleoclimatology: Application to a late Pleistocene Caribbean core. In “Late Cenozoic Ice Ages.”. Turekian, K.K. 71181. Yale Univ. Press New Haven, Conn.Google Scholar
Kennett, J.P. 1977. Cenozoic evolution of antarctic glaciation, the circum-Antarctic Ocean, and their impact on global paleoceanography. Journal of Geophysical Research 82. 38433860.Google Scholar
Klohn, C. 1976. Beobachtungen ueber die Reste eines spaeteiszeitlichen Alercewaldes. Revista Andina Zeitschrift Für Naturfreunde und Wanderer 1975–1976. 7578.Google Scholar
LaMarche, V.C. 1975. Climatic clues from tree rings. New Sci. 66. 811.Google Scholar
Lamb, H.H. 1959. The southern westerlies: A preliminary survey; main characteristics and apparent associations. Quarterly Journal of the Royal Meteorological Society 85. 123.Google Scholar
Lamb, H.H. 1972 Climate: Present, Past, and Future Vol. 1 Methuen London“Fundamentals and Climate Now”Google Scholar
Lorius, C., Merlivat, L., Jouzel, J., Pourchet, M. 1979. A 30,000-yr isotope climatic record from Antarctic ice. Nature (London) 280. 644648.Google Scholar
Macphail, M.K. 1979. Vegetation and climates in southern Tasmania since the last glaciation. Quaternary Research 11. 306341.Google Scholar
Mercer, J.H. 1976. Glacial history of southernmost South America. Quaternary Research 6. 125166.Google Scholar
Miller, A. 1976. The climate of Chile. In World Survey of Climatology Schwerdtfeger, W. 113145. Volume 12 Elsevier Amsterdam Climates of Central and South America. Google Scholar
Moar, N.T. 1971. Contributions to the Quaternary history of the New Zealand flora. 6. Aranuian pollen diagrams from Canterbury, Nelson, and North Westland, South Island. New Zealand Journal of Botany 9. 80145.Google Scholar
Moar, N.T. 1973. Contributions to the Quaternary history of the New Zealand flora. 7. Two Aranuian pollen diagrams from central South Island. New Zealand Journal of Botany 11. 291304.Google Scholar
Moar, N.T. 1980. Late Otiran and early Aranuian grassland in central South Island. New Zealand Journal of Ecology 3. 412.Google Scholar
Moar, N.T., Gage, M. 1973. Interglacial deposits in Joyces Stream (S74), Waimakariri Valley, Canterbury. New Zealand Journal of Geology and Geophysics 16. 321331.Google Scholar
Moar, N.T., Suggate, R.P. 1973. Pollen analysis of late Otiran and Aranuian sediments at Blue Spur Road (S51), north Westland. New Zealand Journal of Geology and Geophysics 16. 333344.Google Scholar
Moar, N.T., Suggate, R.P. 1979. Contributions to the Quaternary history of the New Zealand flora. 8. Interglacial and glacial vegetation in the Westport District, South Island. New Zealand Journal of Botany 17. 361387.Google Scholar
Morley, J.J., Hays, J.D. 1979. Comparison of glacial and interglacial oceanographic conditions in the South Atlantic from variations in calcium carbonate and radiolarian distributions. Quaternary Research 12. 396408.Google Scholar
Muñoz, P.C. 1966 Sinopsis de la Flora Chilena Ediciones de la Universidad de Chile Santiago.Google Scholar
Nathan, S., Moar, N.T. 1975. Late Quaternary terraces between Ship Creek and the Whakapohai River, south Westland, New Zealand. Journal of the Royal Society of New Zealand 3. 313327.Google Scholar
Oberdorfer, E. 1960 Pflanzensoziologische Studien in Chile Cramer Weinheim.Google Scholar
Porter, S.C. 1981. Pleistocene glaciation in the southern lake district of Chile. Quaternary Research 16. 263292.Google Scholar
Prell, W.L., Hutson, W.H., Williams, D.F. 1979. The Subtropical Convergence and late Quaternary circulation in the southern Indian Ocean. Marine Micropaleontology 4. 225234.Google Scholar
Ramírez, G.C., Riveros, G.M. 1975. Los alerzales de Cordillera Pelada: flora y fitosociología. Medio Ambiente 1. 313.Google Scholar
Reiche, K. 1907. Grundzüge der Pflanzenverbreitung in Chile. Die Vegetation der Erde 8. 1374.Google Scholar
Schmithüsen, J. 1956. Die räumliche Ordnung der chilenischen Vegetation. Bonner Geographische Abhandlungen 17. 186.Google Scholar
Schmithüsen, J. 1960. Die Nadelhölzer in den Waldgesellschaften der südlichen Anden. Vegetatio 9. 313327.Google Scholar
Stuiver, M., Denton, G.H., Hughes, T.J., Fastook, J.L. 1981. History of the marine ice sheet in West Antarctica during the last glaciation: A working hypothesis. In “The Last Great Ice Sheets.”. Denton, G.H., Hughes, T.J. pp. 319436.Google Scholar
Stuiver, M., Heusser, C.J., Yang, I.C. 1978. North American glacial history extended to 75,000 years ago. Science 200. 1621.Google Scholar
Taljaard, J.J. 1972. Synoptic meteorology of the Southern Hemisphere. In “Meteorology of the Southern Hemisphere. Meteorological Monographs 13.” Newton, C.W. 139213. Amer. Meteorol. Soc Boston.Google Scholar
Veblen, T.T. 1979. Structure and dynamics of Nothofagus forests near timberline in south-central Chile. Ecology 60. 937945.Google Scholar
Veblen, T.T., Ashton, D.H. 1978. Catastrophic influences on the vegetation of the Valdivian Andes, Chile. Vegetatio 36. 149167.Google Scholar
Veblen, T.T., Ashton, D.R. 1979. Successional pattern above timberline in south-central Chile. Vegetatio 40. 3947.Google Scholar
Veblen, T.T., Ashton, D.R., Schlegel, F.M., Veblen, A.T. 1977. Plant succession in a timberline depressed by vulcanism in south-central Chile. Journal of Biogeography 4. 275294.Google Scholar
Veblen, T.T., Delmastro, R.J., Schlatter, J.E. 1976. The conservation of Fitzroya cupressoides and its environment in southern Chile. Environmental Conservation 3. 291301.Google Scholar
Veblen, T.T., Schlegel, F.M., Escobar, R.B. 1980. Structure and dynamics of old-growth Nothofagus forests in the Valdivian Andes, Chile. Journal of Ecology 68. 131.Google Scholar
Villagrán, C. 1980. Vegetationsgeschichte und pflanzensoziologische Untersuchungen in Vicente Pérez Rosales Nationalpark (Chile). Disertationes Botanicae 54. 1165.Google Scholar