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Bottomland hardwood productivity: case study in a rapidly subsiding, Louisiana, USA, watershed

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Abstract

The Verret basin was formerly an overflow area between the Mississippi and Atchafalaya rivers and contains about 41,000ha of forested wetlands. Water levels are rising at the rate of over 1 cm/year in this area, and the forests are subjected to longer and deeper flooding. Tree growth, litterfall, and species composition were monitored across a flooding gradient during January 1985–December 1986. The driest area was only 20 cm higher in elevation than the wettest area, but the structure of the forest changes greatly over this range. The drier area was dominated by sweetgum (Liquidambar styraciflua L.), oaks (Quercus spp.), and sugarberry (Celtis laevigata Willd.), while green ash (Fraxinus pennsylvanica Marsh.), red maple (Acer rubrum L.), and baldcypress (Taxodium distichum (L.) Rich.) were dominant in the wetter area. Green ash and bitter pecan (Carya aquatica (Michaux. f.) Nutt.) were found in all plots, but these two species are under severe stress in the more flooded area as evidenced by dead and dying trees. Stem wood production increased from 1985 to 1986 in the driest (392 to 473 g/m2/yr) and wettest (199 to 399 g/m2/yr) plots, but remained relatively unchanged in the transitional area (386 to 380g/m2/yr). Leaf litter production decreased across the gradient from dry to flooded plots during both years. Over 40% of the litterfall in the drier plot was from flood-tolerant shrub species. In the flooded plots, red maple and baldcypress were major contributors to total litterfall. Increased flooding of dry bottomland forests in the future could lead to decreased litterfall and increased tree death over the entire watershed.

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References

  • Barth, M.C. and Titus, J.G., eds. 1984. Greenhouse effect and sea level rise: a challenge for this generation. Van Nostrand Reinhold, NY, USA. 325 pp.

    Google Scholar 

  • Baumann, R.H., Day, J.W., Jr. and Miller, C.A. 1984. Mississippi deltaic wetland survival: sedimentation versus coastal submergence. Science, 224: 1093–1095.

    Google Scholar 

  • Brinson, M.M., Lugo, A.E. and Brown, S. 1981. Primary productivity, decomposition and consumer activity in freshwater wetlands. Ann. Rev. Ecol. Syst., 12: 123–161.

    Google Scholar 

  • Brinson, M.M., Bradshaw, H.D. and Jones, M.N. 1985. Transitions in forested wetlands along gradients of salinity and hydroperiod. J. Elisha Mitchell Sci. Soc., 101: 76–94.

    Google Scholar 

  • Britsch, L.D., Dunbar, J.B. and Smith, L.M. 1985. Geomorphological investigations of the Atchafalaya Basin, Area West, and Terrebonne marshes. U.S. Army, Corps of Engineers, Waterways Exp. Sta. Vicksburg, MS, USA. 85 pp.

    Google Scholar 

  • Broadfoot, W.H., 1967. Shallow water impoundment increases soil moisture and growth of hardwoods. Soil Sci. Soc. Am. Proc., 31: 562–564.

    Google Scholar 

  • Broadfoot, W.H. and Williston, H.L. 1973. Flooding effects on southern forests. J. Forestry, 71: 584–587.

    Google Scholar 

  • Brody, M., Conner, W.H., Pearlstine, J. and Kitchens, W. 1989. Modeling bottomland forest and wildlife habitat changes in Louisiana'a Atchafalaya basin. pp. 991–1004. Edited by R.R. Sharitz and J.W. Gibbons. Freshwater Wetlands and Wildlife: Perspectives on Natural, Managed and Degraded Ecosystems. CONF-8603101, DOE Symposium Series No. 61, Office of Scientific and Technical Information, Oak Ridge, TN, USA.

    Google Scholar 

  • Brown, S. and Peterson, D.L. 1983. Structural characteristics and biomass production of two Illinois bottomland forests. Am. Midl. Nat., 110: 107–117.

    Google Scholar 

  • Brown, S., Brinson, M.M. and Lugo, A.E. 1979. Structure and function of riparian wetlands. In: Strategies for Protection and Management of Floodplain Wetlands and Other Riparian Ecosystems. pp. 17–31. Edited by R.R. Johnson and J.F. McCormick. U.S. For. Serv. Gen. Tech. Rep. WO-12. Washington, D.C., USA.

    Google Scholar 

  • Conner, W.H. and Brody, M. 1989. Rising water levels and the future of southeastern Louisiana swamp forests. Estuaries, 12: 318–323.

    Google Scholar 

  • Conner, W.H. and Day, J.W., Jr. 1976. Productivity and composition of a baldcypress-water tupelo site and a bottomland hardwood site in a Louisiana swamp. Am. J. Botany, 63: 1354–1364.

    Google Scholar 

  • Conner, W.H. and Day, J.W., Jr. 1982. The ecology of forested wetlands in the southeastern United States. In: Wetlands Ecology and Management. pp.69–87. Edited by B. Gopal, R.E. Turner, R.G. Wetzel, and D.F. Whigham. International Scientific Publications, Jaipur, India.

    Google Scholar 

  • Conner, W.H. and Day, J.W., Jr. 1988a. The impact of rising water levels on tree growth in Louisiana. In: The Ecology and Management of Wetlands. pp. 219–224. Edited by Hook, D.D. et al. Croom Helm Ltd Publishers, England.

    Google Scholar 

  • Conner, W.H. and Day, J.W., Jr. 1988b. Rising water levels in coastal Louisiana: implications for two forested wetland areas in Louisiana. J. Coastal Res., 4: 589–596.

    Google Scholar 

  • Conner, W.H., Gosselink, J.G. and Parrondo, R.T. 1981. Comparison of the vegetation of three Louisiana swamp sites with different flooding regimes. Am. J. Botany, 63: 1354–1364.

    Google Scholar 

  • Gornitz, V., Lebedeff, S. and Hansen, J.F. 1982. Global sea level trend in the past century. Science, 215: 1611–1614.

    Google Scholar 

  • Gosselink, J.G. 1984. The ecology of delta marshes of coastal Louisiana: a community profile. U.S. Fish Wild. Serv. Office Biol. Serv. FWS/OBS-84/09. Washington, D.C., USA. 134pp.

    Google Scholar 

  • Gosselink, J.G., Bayley, S.E., Conner W.H. and Turner R.E. 1981. Ecological factors in the determination of riparian wetland boundaries. In: Wetlands of bottomland hardwood forests. pp. 197–219. Edited by J.R. Clark and J. Benforado. Elsevier Sci. Pub. Co., Amsterdam.

    Google Scholar 

  • Green, W.E. 1947. Effect of water impoundment on tree mortality and growth. J. Forestry, 45: 118–120.

    Google Scholar 

  • Hall, T.F. and Smith, G.E. 1955. Effects of flooding on woody plants. West Sandy dewatering project, Kentucky Reservoir. J. Forestry, 53: 281–285.

    Google Scholar 

  • Hall, T.F. Penfound, W.T. and Hess, A.D. 1946. Water level relationships of plants in the Tennessee Valley with particular reference to malaria control. J. Tenn. Acad. Sci., 21: 18–59.

    Google Scholar 

  • Harms, W.R., Schruder, H.T., Hook, D.D., Brown, C.L. and Shropshire, F.W. 1980. The effects of flooding on the swamp forest in Lake Ocklawha, Florida. Ecology, 61 (6): 1412–1421.

    Google Scholar 

  • Hoffman, J.S., Keynes, D. and Titus, J.G. 1983. Projecting sea level rise: methodology, estimates to the year 2100 and research needs. Report EPA 230–09–007. U.S. Environmental Protection Agency, Office of Policy and Research Management, Washington, D.C., USA.

    Google Scholar 

  • Hook, D.D. 1984. Waterlogging tolerance of lowland tree species of the south. S.J. Applied For., 8 (3): 136–149.

    Google Scholar 

  • Hook, D.D. and Brown, C.L. 1973. Root adaptations and relative flood tolerance of five hardwood species. Forest Science, 19: 225–229.

    Google Scholar 

  • Hook, D.D., DeBell, D.S. and Askew, J.L.1983. Responses of loblolly pine (mesophyte) and swamp tupelo (hydrophyte) seedlings to soil flooding and phosphorus. Plant and Soil, 71: 387–394.

    Google Scholar 

  • Hosner, J.F., 1958. The effects of complete inundation upon seedlings of six bottomland tree species. Ecology, 39: 371–373.

    Google Scholar 

  • Hosner, J.F. and Boyce, S.G. 1962. Relative tolerance to water saturated soil of various bottomland hardwoods. Forest Science, 8: 180–186.

    Google Scholar 

  • Johnson, F.L. and Bell, D.T. 1976a. Plant biomass and net primary production along a flood-frequency gradient in the streamside forest. Castanea, 41: 156–165.

    Google Scholar 

  • Johnson, F.L. and Bell, D.T. 1976b. Tree growth and mortality in the streamside forest. Castanea, 41: 34–41.

    Google Scholar 

  • Kennedy, H.E. 1970. Growth of newly planted water tupelo seedlings after flooding and siltation. Forest Science, 16: 250–256.

    Google Scholar 

  • Kozlowski, T.T., ed. 1984a. Flooding and Plant Growth. Academic Press, Inc., NY, USA. 356 pp.

    Google Scholar 

  • Kozlowski, T.T. 1984b. Responses of woody plants to flooding. Flooding and Plant Growth, pp. 129–163. Edited by T.T. Kozlowski, Academic Press, Inc., NY, USA.

    Google Scholar 

  • Liming, F.G. 1957. Homemade dendrometers. J. Forestry, 55: 575–577.

    Google Scholar 

  • Lugo, A.E. and Brown, S.L. 1984. The Oklawaha River forested wetlands and their response to chronic flooding. Cypress Swamps, pp. 365–371. Edited by K.C. Ewel and H.T. Odum. University Presses of Florida, Gainesville, FL., USA.

    Google Scholar 

  • Mudholland, P.J. 1979. Organic carbon cycling in a swamp-stream ecosystem and export by streams in eastern North Carolina. Dissertation. University of North Carolina, Chapel Hill, NC, USA. 152 pp.

    Google Scholar 

  • Newsome, R.D., Kozlowski, T.T. and Tang, Z.C. 1982. Responses of Ulmus americana seedlings to flooding of soil. Can. J. Botany, 60: 1688–1695.

    Google Scholar 

  • Odum, E.P. 1978. The value of wetlands: a hierarchical approach. Wetland functions and values: the state of our understanding. pp. 16–25. Edited by P.E. Greeson, J.R. Clark, and J.E. Clark. Am. Water Resour. Assoc., Minneapolis, MN., USA.

    Google Scholar 

  • Peterson, D.L. and Bazzaz, F.A. 1984. Photosynthetic and growth responses of silver maple (Acer saccharinum L.) seedlings to flooding. Am. Midl. Nat., 112: 261–272.

    Google Scholar 

  • Pezeshki, S.R. and Chambers, J.L. 1985a. Responses of cherrybark oak seedlings to short-term flooding. Forest Science, 31: 760–771.

    Google Scholar 

  • Pezeshki, S.R. and Chambers, J.L. 1985b. Stomatal and photosynthetic response of sweetgum (Liquidambar styraciflua) to flooding. Can. J. For. Res., 15: 371–375.

    Google Scholar 

  • Putnam, J.A., Furnival, G.M. and J.S. McKnight. 1960. Management and inventory of southern hardwoods. U.S. Dept. Agric., For. Ser., Washington, D.C., USA. Agric. Handbk. No. 181.

    Google Scholar 

  • Salinas, L.M., DeLaune, R.D. and Patrick, W.H., Jr. 1986. Changes occurring along a rapidly submerging coastal area: Louisiana, USA. J. Coastal Res., 2 (3): 269–284.

    Google Scholar 

  • Sena Gomes, A.R. and Kozlowski, T.T. 1980. Growth responses and adaptations of Fraxinus pennsylvanica seedlings to flooding. Plant Physiol., 66: 267–271.

    Google Scholar 

  • Silker, T.H. 1948. Planting of water-tolerant trees along margins of fluctuating-level reservoirs. Iowa State Coll. J. Sci., 22: 431–448.

    Google Scholar 

  • Soil Conservation Service (SCS). 1978. Lake Verret watershed, final revised environmental impact statement. U.S. Dep. Agric., Alexandria, LA, USA. 148 pp.

    Google Scholar 

  • Teskey, R.O. and Hinckley, T.M. 1977a. Impact of water level changes on woody riparian and wetland communities. Vol. 1: Plant and soil responses to flooding. U.S. Department of the Interior, Office of Biological Services, National Stream Alteration Team, Columbia, MO., USA. FWS/OBS-77/58. 30pp.

    Google Scholar 

  • Teskey, R.O. and Hinckley, T.M. 1977b. Impact of water level changes on woody riparian and wetland communities. Vol. 2: The southern forest region. U.S. Department of the Interior, Office of Biological Services, National Stream Alteration Team, Columbia, MO., USA. FWS/OBS-77/59. 46 pp.

    Google Scholar 

  • Teskey, R.O. and Hinckley, T.M. 1982. Impact of water level changes on woody riparian and wetland communities. Vol. 10: Index and addendum to volumes 1–8. U.S. Department of the Interior, Office of Biological Services, Eastern Energy and Land Use Team, Kearneysville, WV., USA. FWS/OBS-82–23. III pp.

    Google Scholar 

  • U.S. Forest Products Laboratory. 1974. Wood handbook: wood as an engineering material. U.S. Dep. Agric. Handb. 72. U.S. Government Printing Office, Washington, D.C., USA.

    Google Scholar 

  • Waring, R.H. and Schlesinger, W.H. 1985. Forest Ecosystems. Academic Press, Orlando, FL., USA. 340pp.

    Google Scholar 

  • Whitlow, T.H. and Harris, R.W. 1979. Flood tolerance in plants: a state of the art review. U.S. Army Corps Eng. Tech. Rep. No. E-72–2. U.S. Army Corps of Engineers, Waterways Experiment Station Environmental Laboratory, Vicksburg, MS., USA.

    Google Scholar 

  • Whittaker, R.H. and Woodwell, G.M. 1968. Dimension and production relations of trees and shrubs in the Brookhaven Forest, New York. J. Ecol., 56: 1–25.

    Google Scholar 

  • Yeager, L.E. 1949. Effect of permanent flooding in a river bottom timber area. Ill. Nat. Hist. Survey Bull., 25: 33–65.

    Google Scholar 

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Conner, W.H., Day, J.W. & Slater, W.R. Bottomland hardwood productivity: case study in a rapidly subsiding, Louisiana, USA, watershed. Wetlands Ecol Manage 2, 189–197 (1993). https://doi.org/10.1007/BF00188153

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