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Timing and cause of water level fluctuations in Kluane Lake, Yukon Territory, over the past 5000 years

Published online by Cambridge University Press:  20 January 2017

Janice Brahney*
Affiliation:
Department of Earth Sciences, Simon Fraser University, Burnaby, BC, Canada V5A 1S6
John J. Clague
Affiliation:
Department of Earth Sciences, Simon Fraser University, Burnaby, BC, Canada V5A 1S6
Brian Menounos
Affiliation:
Natural Resources and Environmental Studies Institute and Geography Program, University of Northern British Columbia, Prince George, BC, Canada V2N 4Z9
Thomas, W.D. Edwards
Affiliation:
Department of Earth and Environmental Sciences, University of Waterloo, Waterloo, ON, Canada N2L 3G1
*
*Corresponding author. E-mail address:Janice.brahney@colorado.edu (J. Brahney).

Abstract

We reconstructed late Holocene fluctuations of Kluane Lake in Yukon Territory from variations in bulk physical properties and carbon and nitrogen elemental and isotopic abundances in nine sediment cores. Fluctuations of Kluane Lake in the past were controlled by changes in climate and glaciers, which affected inflow of Slims and Duke rivers, the two largest sources of water flowing into the lake. Kluane Lake fluctuated within a narrow range, at levels about 25 m below the present datum, from about 5000 to 1300 cal yr BP. Low lake levels during this interval are probably due to southerly drainage of Kluane Lake to the Pacific Ocean, opposite the present northerly drainage to Bering Sea. Slims River, which today is the largest contributor of water to Kluane Lake, only rarely flowed into the lake during the period 5000 to 1300 cal yr BP. The lake rose 7–12 m between 1300 and 900 cal yr BP, reached its present level around AD 1650, and within a few decades had risen an additional 12 m. Shortly thereafter, the lake established a northern outlet and fell to near its present level.

Type
Original Articles
Copyright
University of Washington

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Footnotes

1 Current address: Department of Geological Sciences, University of Colorado at Boulder, Boulder, CO., 80309, USA.

References

Anderson, L., Abbott, M.B., Finney, B.P., Burns, S.J., (2005). Regional atmospheric circulation change in the North Pacific during the Holocene inferred from lacustrine carbonate oxygen isotopes, Yukon Territory, Canada.. Quaternary Research 64, 2135.Google Scholar
Bonan, G.B., (1990). Carbon and nitrogen cycling in North American boreal forests. I. Litter quality and thermal regime effects in interior Alaska.. Biogeochemistry 10, 128.CrossRefGoogle Scholar
Borns, H.W. Jr., Goldthwait, R.P., (1966). Late-Pleistocene fluctuations of Kaskawulsh Glacier, southwestern Yukon Territory, Canada.. American Journal of Science 264, 600619.Google Scholar
Bostock, H.S., (1969). Kluane Lake, Yukon Territory; its drainage and allied problems.. Geological Survey of Canada Paper 69-28.Google Scholar
Brahney, J., Clague, J., Menounos, B., Edwards, T., (2007). Geochemical reconstruction of late Holocene drainage and mixing in Kluane Lake, Yukon Territory, Canada.. Journal of Paleolimnology 10.1007/s10933-007-9177-z.Google Scholar
Clague, J.J., (1981). Landslides at the south end of Kluane Lake, Yukon Territory.. Canadian Journal of Earth Sciences 18, 959971.Google Scholar
Clague, J.J., Evans, S.G., Rampton, V.N., Woodsworth, G.J., (1995). Improved age estimates for the White River and Bridge River tephras, western Canada.. Canadian Journal of Earth Sciences 32, 11721179.Google Scholar
Clague, J.J., Luckman, B.H., Van Dorp, R.D., Gilbert, R., Froese, D., Jensen, B.J.L., Reyes, A.V., (2006). Rapid changes in the level of Kluane Lake in Yukon Territory over the last millennium.. Quaternary Research 66, 342355.Google Scholar
Denton, G.H., Stuiver, M., (1966). Neoglacial chronology, northeastern St.. Elias Mountains, Canada. American Journal of Science 264, 577599.Google Scholar
Denton, G.H., Karlén, W., (1977). Holocene glacial and tree-line variations in the White River valley and Skolai Pass, Alaska and Yukon Territory.. Quaternary Research 7, 63111.CrossRefGoogle Scholar
Gilbert, R., Desloges, J.R., (1987). Sediments of ice-dammed, self-draining Ape Lake, British Columbia.. Canadian Journal of Earth Sciences 24, 17351747.Google Scholar
Healey, F.P., Hendzel, L.L., (1979). Physiological indicators of nutrient deficiency in lake phytoplankton.. Canadian Journal of Fisheries and Aquatic Sciences 37, 442453.CrossRefGoogle Scholar
Hecky, R.E., Campbell, P., Hendzel, L.L., (1993). The stoichiometry of carbon, nitrogen, and phosphorus in particulate matter of lakes and ocean.. Limnology and Oceanography 38, 709724.Google Scholar
Heilman, P.E., (1966). Change in distribution and availability of nitrogen with forest succession on north slopes in interior Alaska.. Ecology 47, 825831.Google Scholar
Menounos, B., (1997). The water content of lake sediments and its relationship to other physical parameters: an alpine case study.. The Holocene 7, 207212.CrossRefGoogle Scholar
Meyers, P.A., Eadie, B.J., (1993). Sources, degradation and recycling of organic matter associated with sinking particles in Lake Michigan.. Organic Geochemistry 20, 4756.Google Scholar
Meyers, P.A., Teranes, J.L., (2001). Sediment organic matter.. Last, W.M., Smol, J.P. Tracking Environmental Change Using Lake Sediments Physical and Geochemical Techniques vol. 2, Kluwer Academic Publishers, Dordrecht, The Netherlands., pp. 239269.Google Scholar
Natural Resources Canada (2003). The Atlas of Canada: Facts about Canada: Lakes.. http://atlas.gc.ca/site/english/learningresources/facts/lakes.html#yukon (accessed January 2005).Google Scholar
O'Leary, M.H., (1988). Carbon isotopes in photosynthesis.. Bioscience 38, 328336.Google Scholar
Rampton, V.N., and Shearer, J.M. (1978). The geology and limnology of Kluane Lake, Yukon Territory, I Preliminary assessment. Unpublished Report. Terrain Analysis and Mapping Services Ltd.. Stittsville, ON.Google Scholar
Stuiver, M., Reimer, P.J., Bard, E., Beck, J.W., Burr, G.S., Hughen, K.A., Kromer, B., McCormac, G., van der Plicht, J., Spurk, M., (1998). INTCAL98 Radiocarbon Age Calibration, 24000-0 cal BP.. Radiocarbon 40, 10411083.Google Scholar
Talbot, M.R., (2001). Nitrogen isotopes in palaeolimnology.. Last, W.M., Smol, J.P. Tracking Environmental Change Using Lake Sediments Physical and Geochemical Techniques vol. 2, Kluwer Academic Publishers, Dordrecht, The Netherlands., pp. 401439.CrossRefGoogle Scholar
Tenzer, G.E., Meyers, P.A., Knoop, P., (1997). Sources and distribution of organic and carbonate carbon in sediments of Pyramid Lake, Nevada.. Journal of Sedimentary Research 67, 884890.Google Scholar