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Trends in River Flow Affecting the Northeastern Reach of the San Francisco Bay Estuary over the Past 7000 Years

Published online by Cambridge University Press:  20 January 2017

Michelle Goman
Affiliation:
Department of Geography, Department of Geological Sciences, Rutgers University, Piscataway, New Jersey, 08854
Lisa Wells
Affiliation:
Department of Geology, Vanderbilt University, Nashville, Tennessee, 37235

Abstract

A variety of stratigraphic analyses (particle grain size, iron concentration, loss on ignition, and macrofossils) from sediments obtained from two marsh sites are used to reconstruct a middle to late Holocene record of stream flow into San Francisco Bay. Browns Island, a freshwater/brackish site, is located at the confluence of the Sacramento and San Joaquin rivers and is dominated by stands of Scirpus americanus. Peyton Hill is a brackish site located near Carquinez Straits and is dominated by stands of Scirpus robustus. Twenty-five AMS 14C dates provide chronostratigraphic control. During the Holocene, discharge from the Sacramento and San Joaquin rivers was broadly comparable to modern flows; however, an extended period of higher flow began 3800 cal yr B.P. and continued for almost two millennia. At this time Browns Island supported Phragmites communis, a freshwater species, and Peyton Hill supported S. americanus. At least two floods, recognized by discrete increases in sand and silt, occurred at 3600 and 530 cal yr B.P.

Type
Research Article
Copyright
University of Washington

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References

Atwater, B.F. (1980). Attempts to Correlate Late Quaternary Climatic Records between San Francisco Bay, the Sacramento–San Joaquin Delta, and the Mokelumne River, California. Univ. of Delaware, Google Scholar
Atwater, B. F., Hedel, C. H..(1976). Distribution of Seed Plants with Respect to Tide Levels and Water Salinity in the Natural Tidal Marshes of the Northern San Francisco Bay Estuary, California, U.S. Geological Survey Open-File Report 76–389.Google Scholar
Atwater, B. F.,Hedel, C. W., Helley, E. J.(1977). Late Quaternary Depositional History, Holocene Sea-Level Changes, and Vertical Crustal Movement, Southern San Francisco Bay, California. U.S. Geological Survey Professional Paper 1014.Google Scholar
Atwater, B.F., Conrad, S.G., Dowden, J.N., Hedel, C.H., Macdonald, R.L., Savage, W.(1979). History, landforms and vegetation of the estuary's tidal marshes. Conomos, T.J. San Francisco Bay: The Urbanized Estuary American Association for the Advancement of SciencePacific Division, San Francisco.347385.Google Scholar
Burke, R. M., Birkeland, P. W.(1983). Holocene glaciation in the mountain ranges of the western United States. In Wright, H. E. Jr. (Ed.), Late Quaternary environments of the United States. Volume 2. The Holocene.Minneapolis, Univ. Minnesota Press, pp. 311.Google Scholar
Cayan, D.R., Peterson, D.H.(1993). Spring climate and salinity in the San Francisco Bay estuary. Water Resources Research, 29, 293303.Google Scholar
Conomos, T.J. (1979). Properties and circulation of San Francisco Bay Waters. Conomos, T.J. San Francisco Bay: The Urbanized Estuary American Association for the Advancement of SciencePacific Division, San Francisco.4784.Google Scholar
Conomos, T.J., Smith, R.E., Gartner, J.W.(1985). Environmental setting of San Francisco Bay. Hydrobiologia, 129, 112.CrossRefGoogle Scholar
Currey, D.R. (1990). Quaternary palaeolakes in the evolution of semidesert basins, with special emphasis on Lake Bonneville and the Great Basin, U.S.A. Palaeogeography, Palaeoclimatology, Palaeoecology, 76, 189214.Google Scholar
Daoust, R.J., Moore, T.R., Chmura, G.L., Magenheimer, J.F.(1996). Chemical evidence of environmental changes and anthropogenic influences in a Bay of Fundy saltmarsh. Journal of Coastal Research, 12, 520533.Google Scholar
Dean, W.E.. Determination of carbonate and organic matter in calcareous sediments and sedimentary rocks by loss on ignition: Comparison with other methods. Journal of Sedimentary Petrology, 44, (1974). 242248.Google Scholar
Edlund, E.G., Byrne, R.. Climate, fire, and late Quaternary vegetation change in the central Sierra Nevada. Nodvin, S.C., Waldrop, T.A.(1991). Fire and the Environment: Ecological and Cultural Perspectives. Southeastern Forest Experiment Station, Ashville.390396.Google Scholar
Enzel, Y., Cayan, D.R., Anderson, R.Y., Wells, S.G.(1989). Atmospheric circulation during Holocene lake stands in the Mojave Desert: Evidence of regional climate change. Nature, 341, 4447.Google Scholar
Fletcher, C.H. III, Van Pelt, J.E., Brush, G., Sherman, J.(1993). Tidal wetland record of Holocene sea-level movements and climate history. Palaeogeography, Palaeoclimatology, Palaeoecology, 102, 177213.CrossRefGoogle Scholar
Folk, R.L. (1980). Petrology of Sedimentary Rocks. Hemphill, Austin.Google Scholar
Fox, J.P., Mongan, T.R., Miller, W.J.(1990). Trends in freshwater inflow to San Francisco Bay from the Sacramento–San Joaquin Delta. Water Resources Bulletin, 26, 101116.Google Scholar
Goman, M. (1996). A History of Holocene Environmental Change in the San Francisco Estuary. Univ. of California, Berkeley.Google Scholar
Goman, M. (1998). Correlation of Marsh Seed Banks with Vegetation Diversity and Composition for Palaeoecological Analysis. p. 5 Google Scholar
Graumlich, L.J. (1993). A 1000-year record of temperature and precipitation in the Sierra Nevada. Quaternary Research, 39, 249255.CrossRefGoogle Scholar
Hedgepeth, J.W.. San Francisco the unsuspected estuary: A history of researches. Conomos, T.J.(1979). San Francisco Bay: The Urbanized Estuary. American Association for the Advancement of SciencePacific Division, San Francisco.929.Google Scholar
Hickman, J.C. (1993). The Jepson Manual: Higher Plants of California. Univ. of California Press, Berkeley, Los Angeles.Google Scholar
Hughes, M.K., Brown, P.M.(1992). Drought frequency in central California since 101 B.C. recorded in Giant Sequoia tree rings. Climate Dynamics, 6, 161167.Google Scholar
Ingram, B.L., Sloan, D.(1992). Strontium isotopic composition of estuarine sediments as paleosalinity–paleoclimate indicator. Science, 255, 6872.Google Scholar
Ingram, B.L., DePaolo, D.J.(1993). A 4300 year strontium isotope record of estuarine paleosalinity in San Francisco Bay, California. Earth and Planetary Science Letters, 119, 103119.Google Scholar
Ingram, B.L., Ingle, J.C., Conrad, J.C.(1996). A 2000 yr record of Sacramento–San Joaquin River inflow to San Francisco estuary, California. Geology, 24, 331334.Google Scholar
Ingram, B.L., Ingle, J.C., Conrad, J.C.(1996). Stable Isotope Record of Late Holocene Salinity and River Discharge in San Francisco Bay, California. Earth and Planetary Science Letters, 141, 237247.Google Scholar
Ingram, B.L., Southon, J.R.(1996). Reservoir ages in Eastern Pacific coastal and estuarine waters. Radiocarbon, 38, 573582.CrossRefGoogle Scholar
Knight, W. (1980). The story of Browns Island. The Four Seasons, 6, 310.Google Scholar
Koehler, P.A., Anderson, R.S.(1994). The palaeoecology and stratigraphy of Nichols Meadow, Sierra National Forest, California, USA. Palaeogeography, Palaeoclimatology, Palaeoecology, 112, 117.Google Scholar
Krone, R.B.. Sedimentation in the San Francisco Bay System. Conomos, T.J.(1979). San Francisco Bay: The Urbanized Estuary. American Association for the Advancement of SciencePacific Division, San Francisco.8596.Google Scholar
Kutzbach, J. E., Webb, T.III1993. Conceptual basis for understanding Late-Quaternary climates. InGlobal Climates since the Last Glacial Maximum(Wright, H. EJr.,.Kutzbach, J. E, Webb, T.III, Ruddiman, W. F., Street-Perrott, F. A, Bartlein, P. J. Eds.), pp. 511. Univ. of Minnesota Press, Minneapolis.Google Scholar
Kutzbach, J. E., Guetter, P. J., Behling, P. J., and Selin, R. (1993). Simulated climatic changes; Results of the COHMAP climate-model experiments. InGlobal Climates since the Last Glacial Maximum (Wright, H. E.Jr., Kutzbach, J. E,Webb III, T.,Ruddiman, W. F., Street-Perrott, F. A., Bartlein, P. J, Eds.), pp. 2493.Univ. of Minnesota Press, Minneapolis.Google Scholar
Martin, A. C., Barkley, W. D.(1961). Seed Identification Manual. University of California Press, Berkeley, Los Angeles.Google Scholar
Mason, H.L. (1957). A Flora of the Marshes of California. Univ. of California Press, Berkeley, Los Angeles.Google Scholar
Montgomery, F.H. (1977). Seeds and Fruits of Plants of Eastern Canada and Northeastern United States. Univ. of Toronto Press, Toronto.Google Scholar
Munz, P.A. (1973). A California Flora. Univ. of California Press, Berkeley, Los Angeles.Google Scholar
Nelson, A.R. (1992). Discordant 14C ages from buried tidal-marsh soils in the Cascadia subduction zone, South Oregon coast. Quaternary Research, 38, 7490.Google Scholar
Nichols, F.H., Cloern, J.E., Luoma, S.N., Peterson, D.H.(1986). The modification of an estuary. Science, 231, 567573.Google Scholar
Pestrong, R. (1972). Tidal-flat sedimentation at Cooley Landing, southwest San Francisco Bay. Sedimentary Geology, 8, 251288.Google Scholar
Peterson, D.H., Cayan, D.R., Festa, J.F., Nichols, F.H., Walters, R.A., Slack, J.V., Hager, S.E., Schemel, L.E.. Climate variability in an estuary: Effects of riverflow on San Francisco Bay. Peterson, D.H.(1989). Aspects of Climate Variability in the Pacific and Western Americas. American Geophysical Union, Washington.419442.Google Scholar
Pethick, J.S. (1981). Long-term accretion rates on tidal salt marshes. Journal of Sedimentary Petrology, 51, 571577.CrossRefGoogle Scholar
Pizzuto, J.E., Rogers, E.W.(1992). The Holocene history and stratigraphy of Palustrine and Estuarine deposits of central Delaware. Journal of Coastal Research, 8, 854867.Google Scholar
Rypins, S., Reneau, S.L., Byrne, R., Montgomery, D.R.(1989). Palynologic and geomorphic evidence for environmental change during the Pleistocene–Holocene transition at Point Reyes Peninsula, central coastal California. Quaternary Research, 32, 7287.Google Scholar
Schimmelmann, A., Zhao, M., Harvey, C.C., Lange, C.B.(1998). A large California flood and correlative global climatic events 400 years ago. Quaternary Research, 49, 5161.Google Scholar
Stine, S. (1990). Late Holocene fluctuations of Mono Lake, eastern California. Palaeogeography, Palaeoclimatology, Palaeoecology, 78, 333381.Google Scholar
Stine, S. (1994). Extreme and persistent drought in California and Patagonia during Medieval time. Nature, 369, 546549.Google Scholar
Stuiver, M., Reimer, P.J.(1993). Extended 14C data base and revised calib 3.0 14C age calibration program. Radiocarbon, 35, 215230.Google Scholar
Sullivan, D.G. (1982). Prehistoric Flooding in the Sacramento Valley: Stratigraphic Evidence from Little Packer Lake, Glenn County, California. University of California, Berkeley.Google Scholar
Thomas, E., Varekamp, J.C.(1991). Paleo-environmental analysis of marsh sequences (Clinton, Connecticut): Evidence for a punctuated rise in relative sea level during the Latest Holocene. Journal of Coastal Research, 11, 125158.Google Scholar
Thompson, R.S., Whitlock, C., Bartlein, P.J., Harrison, S., Spaulding, W.G.. Climatic changes in the western United States since 18,000 years. Wright, H.E. Jr., Kutzbach, J.E., Webb III, T., Ruddiman, W.F., Street-Perrott, F.A., Bartlein, P.J.(1993). Global Climates since the Last Glacial Maximum. Univ. of Minnesota Press, Minneapolis.468513.Google Scholar
Wells, L.E.. Radiocarbon dating of Holocene tidal marsh deposits: Applications to reconstructing relative sea level changes in the San Francisco estuary. Noller, J.S., Lettis, W.R., Sowers, J.M.(1995). Quaternary Geochronology and Paleoseismology. Nuclear Regulatory commission, Washington.3.953.102.Google Scholar
West, G. J.,(1977). Late Holocene Vegetation History of the Sacramento–San Joaquin Delta, California. Unpublished report prepared for California Dept. of Water Resources under Interagency Agreement B-5O 173 by the Cultural Heritage Section of the California Department of Parks and Recreation.Google Scholar