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High-Resolution Seismic Reflection Evidence for Middle Holocene Environmental Change, Owasco Lake, New York

Published online by Cambridge University Press:  20 January 2017

Henry T. Mullins
Affiliation:
Department of Earth Sciences, Syracuse University, Syracuse, New York, 13244, E-mail: [email protected]
John D. Halfman
Affiliation:
Department of Geosciences, Hobart and William Smith Colleges, Geneva, New York, 14456, E-mail: [email protected]

Abstract

Approximately 70 km of new decimeter-resolution seismic reflection profile data from Owasco Lake, New York define a middle Holocene (∼4600 14C yr B.P.) erosion surface in the north end of the lake at water depths as great as 26 m. Beneath the lake, post-glacial sediments are up to 9 m thick and represent about 10% of the total sediment fill. Early to middle Holocene sediments, ∼6 m thick, contain biogenic gas at the south end of the basin and a large (4 km × 300 m × 15 m) subaqueous slide deposit along the east-central portion of the lake. Late Holocene sediments are thinner or absent, particularly at the north end of the lake. The middle Holocene erosion surface may have been produced by a drop in lake level. Alternatively, it may represent a change in climate during the transition between the relatively warm Holocene hypsithermal and cool neoglacial. At this time (∼4600 14C yr B.P.) circulation in Owasco Lake appears to have evolved from sluggish to active. The increased circulation, which persists today, probably resulted from atmospheric cold fronts with strong southwesterly winds that piled up water at the north end of the lake. The increased water circulation may have been ultimately driven by decreasing insolation, which produced an increased pole-to-equator thermal gradient and thus, stronger global winds that began at the transition between the hypsithermal and neoglacial.

Type
Research Article
Copyright
University of Washington

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References

Ahrnsbrak, W.F., Valengavich, A., Konkle, A., (1996). Near-shore circulation features in (longitudinal) mid-Seneca Lake, N. Y., and their relationships to internal wave activity and synoptic-scale wind changes.. Geological Society of America Abstracts with Program, 28, 106.Google Scholar
Anderson, W.T., Mullins, H.T., Ito, E., (1997). Stable isotope record from Seneca Lake, New York: Evidence for a cold paleoclimate following the Younger Dryas.. Geology, 25, 135138.Google Scholar
COHMAP(1988). Climatic changes of the last 18,000 years: Observations and simulations.. Science, 241, 10431052.Google Scholar
Dwyer, T.R., Mullins, H.T., Good, S.C., (1996). Paleoclimatic implications of Holocene lake-level fluctuations, Owasco Lake, New York.. Geology, 24, 519522.Google Scholar
Ebel, J.E., Kafka, A.L., (1991). Earthquake activity in the northeastern United States.. Slemmons, D.B., Engdahl, E.R., Zoback, M.D., Blackwell, D.D., Neotectonics of North America, The Geology of North America, Geological Society of America, Boulder.277290.Google Scholar
Effler, S.W., Perkins, M.G., Brooks, C.M., Owens, E.M., (1985). A Review of the Limnology and Water Quality of Owasco Lake.. Upstate Freshwater Institute, Syracuse.p. 117.Google Scholar
Effler, S.W., Perkins, M.G., Green, H., Johnson, D.L., (1987). Effect of “whiting” on optical properties and turbidity in Owasco Lake, New York.. Water Resources Bulletin, 2, 189196.CrossRefGoogle Scholar
Eichenlaub, V.L., (1979). Weather and Climate of the Great Lakes Rregion.. University of Notre Dame, South Bend.p. 335.Google Scholar
Ganopolski, A., Kubatzki, C., Claussen, M., Brovkin, V., Petoukhov, V., (1998). The influence of vegetation-atmospheric-ocean interaction on climate during the mid-Holocene.. Science, 280, 19161919.CrossRefGoogle ScholarPubMed
Halfman, J.D., Herrick, D.T., (1998). Mass movement and reworking of late glacial and post-glacial sediments in northern Seneca Lake, New York.. Northeastern Geology and Environmental Sciences, 2, 227241.Google Scholar
Hilfinger, M.F., Mullins, H.T., (1997). Geology, limnology and paleoclimatology of Green Lakes State Park, New York.. Rayne, T.W., Bailey, D.G., Tewksbury, B.J., Field Trip Guide for the 69th Annual Meeting of the New York State Geological Association, New York State Geological Survey, Albany.127158.Google Scholar
Krishnaswamy, S., Lal, D., Martin, J.M., Meybeck, M., (1971). Geochronology of lake sediments.. Earth and Planetary Science Letters, 11, 407414.Google Scholar
Larsen, E., Seurup, H.P., Johnsen, S.J., Knudsen, K.L., (1995). Do Greenland ice cores reflect NW European interglacial climate variations?.. Quaternary Research, 43, 123132.Google Scholar
Lehman, J.T., (1975). Reconstructing the rate of accumulation of lake sediment: The effect of sediment focusing.. Quaternary Research, 5, 541550.CrossRefGoogle Scholar
Liao, X., Street-Perrott, A., Mitchell, J.F.B., (1994). GCM experiments with different cloud parameterization: Comparison with paleoclimate reconstructions for 6000 years B.P.. Paleoclimates, 1, 99123.Google Scholar
Luckman, B.H., Holdsworth, G., Osborn, G.D., (1993). Neoglacial glacier fluctuations in the Canadian Rockies.. Quaternary Research, 39, 144153.CrossRefGoogle Scholar
Michel, R.L., Kraemer, T.F., (1995). Use of isotopic data to estimate water residence times of the Finger Lakes, New York.. Journal of Hydrology, 164, 118.CrossRefGoogle Scholar
Muller, E.H., Cadwell, D.H., (1986). Surficial geologic map of New York–Finger Lakes sheet.. New York State Geological Survey Map and Chart Series, 40, .Google Scholar
Mullins, H.T., (1998). Holocene lake level and climate change inferred from marl stratigraphy of the Cayuga Lake basin, New York.. Journal of Sedimentary Research, 68, 569578.Google Scholar
Mullins, H.T., (1998). Environmental change controls of lacustrine carbonate, Cayuga Lake, New York.. Geology, 26, 443446.Google Scholar
Mullins, H.T., Hinchey, E.J., (1989). Erosion and infill of New York Finger Lakes: Implications for Laurentide ice sheet deglaciation.. Geology, 17, 622625.Google Scholar
Mullins, H.T., Nagel, D.K., (1983). High-frequency seismic data detect shallow hydrocarbons.. World Oil Nov., 133138.Google Scholar
Mullins, H. T, Hinchey, E. J, Wellner, R. W, Stephens, D. B, Anderson, W. T, Dwyer, T. R, and Hine, A. C., 1996, , Seismic stratigraphy of the Finger Lakes: A Continental Record of Heinrich Event H-1 and Laurentide Ice Sheet Instability.. Geological Society of America Special Paper, 311, , 136., pp.Google Scholar
Nesje, A., Kvamme, M., (1991). Holocene glacier and climate variations in western Norway: Evidence for early Holocene glacier demise and multiple neoglacial events.. Geology, 19, 610612.2.3.CO;2>CrossRefGoogle Scholar
Pielou, E.C., (1991). After the Ice Ages.. University of Chicago Press, Chicago.p. 366.Google Scholar
Rodbell, D.R., Seltzer, G.O., Anderson, D.M., Abbot, M.B., Enfield, D.B., Newman, J.H., (1999). An ∼15,000 year record of El Nino-driven alluviation in southwestern Ecuador.. Science, 283, 516520.Google Scholar
Sandweiss, D.H., Maasch, K.A., Anderson, D.G., (1999). Transitions in the mid-Holocene.. Science, 283, 499500.Google Scholar
Schaffner, W.R., Oglesby, R.T., Bloomfield, J.A., (1978). Limnology of eight Finger Lakes: Hemlock, Canadice, Honeoye, Keuka, Seneca, Owasco, Skaneateles, and Otisco.. Academic Press, New York.313470.Google Scholar
Schubel, J.R., Schiemer, E.W., (1973). The cause of the acoustically impenetrable, or turbid character of Chesapeake Bay sediments.. Marine Geophysical Researches, 2, 6171.Google Scholar
Steig, E.J., (1999). Mid-Holocene climate change.. Science, 286, 14851486.CrossRefGoogle Scholar
Thompson, L.G., Mosley-Thompson, E., Davis, M.E., Lin, P.N., Henderson, K.A., Cole-Dai, J., Bolzan, J.F., Liu, K.B., (1995). Late glacial state and Holocene tropical ice core records from Huscaran, Peru.. Science, 269, 4650.Google Scholar
Wellner, R.W., Petruccione, J.L., Sheridan, R.E., (1996). Correlation of drill-core and geophysical results from Canandaigua Lake valley, New York: Evidence for rapid late glacial sediment infill.. Geological Society of America Special Paper, 311, 3750.Google Scholar