Tidal Wetland Community Response to Varying Levels of Flooding by Saline Water

Wetlands - Tập 35 Số 2 - Trang 227-236 - 2015
Courtney T. Hackney1, G. Brooks Avery2
1Department of Biology, University of North Florida, Jacksonville, USA
2Department of Chemistry, University of North Carolina at Wilmington, Wilmington, USA

Tóm tắt

Từ khóa


Tài liệu tham khảo

Conner WH, Hackney C, Krauss K, Day J Jr (2007) Tidal freshwater forested Wetlands: Future research needs and an overview of restoration. In: Conner WH, Doyle T, Krauss K (eds) Ecology of tidal freshwater forested Wetlands in the Southeastern United States. Springer, Dordrecht, pp 461–488

Culbertson JB, Hackney CT, Posey M, Leonard L, Alphin T, Avery GB Jr., DuMond D, and others (2009) Monitoring effects of a potential increased tidal range in the cape fear river ecosystem due to deepening Wilmington Harbor, North Carolina Year 8: June 1, 2007–May 31, 2008. Unpublished report prepared for the U. S. Army Corps of Engineers, Wilmington District. University of North Carolina - Wilmington Department of Biological Sciences, Wilmington, NC

Ehalt DH (1974) The atmospheric cycle of CH4. Tellus 26:58–70

Hackney CT, Yelverton GF (1990) Effects of human activities and sea level rise on wetland ecosystems in the Cape Fear River Estuary, North Carolina, USA. In: Kvet Y, Whigham DF, Good R (eds) Wetland ecology and management. Kluwer Academic Publishers, Dordrecht, pp 55–61

Hackney C, Posey M, Leonard L, Alphin T, Avery GB Jr., DuMond D and others (2008) Monitoring effects of a potential increased tidal range in the cape fear river ecosystem due to deepening Wilmington Harbor, North Carolina Year 7: June 1, 2006–May 31, 2007. Unpublished report prepared for the U. S. Army Corps of Engineers, Wilmington District. University of North Carolina - Wilmington Department of Biological Sciences, Wilmington, NC

Hansen MH, Ivgvorsen K, Jorgensen BB (1978) Mechanism of hydrogen sulfide release from coastal marine sediments to the atmosphere. Limnol Oceanogr 23:68–76

Hesslein RH (1976) In-situ sampler for close interval pore water studies. Limnol Oceanogr 21:912–914

Hoehler TM, Alperin M, Albert D, Martens C (1994) Field and laboratory studies of methane oxidation in an anoxic marine sediment: evidence for a methanogen-sulfate reducer consortium. Glob Biogeochem Cycles 8:451–463

Howarth RW, Teal JM (1980) Energy flow in a salt marsh ecosystem: the role of reduced inorganic sulfur compounds. Am Nat 116:862–872

CZR Inc (1998) A monitoring plan to determine potential effects of increased tidal range on the Cape Fear River ecosystem due to deepening Wilmington harbor, North Carolina. Unpublished Report prepared for the U.S. Army Corps of Engineers, Wilmington District, Wilmington, North Carolina, USA

CZR Inc (1999) Location of permanent stations, background stations and substations for monitoring potential effects of increased tidal range on the Cape Fear River ecosystems due to deepening Wilmington harbor, North Carolina. Report, prepared for the U.S. Army Corps of Engineers, Wilmington NC, 48

Krauss KW, Chambers J, Creech D (2007) Selection of salt tolerance in tidal freshwater swamp species: Advances using bald cypress as a model for restoration. In: Conner WH, Doyle T, Krauss K (eds) Ecology of tidal freshwater forested Wetlands in the Southeastern United States. Springer, Dordrecht, pp 385–410

Martens CS, Goldhaber M (1978) Early diagenesis in transitional sedimentary environments of the White Oak River Estuary, North Carolina. Limnol Oceanogr 233:428–441

Martens CS, Klump JV (1984) Biogeochemical cycling in an organic-rich coastal marine basin. IV. An organic carbon budget for sediments dominated by sulfate reduction and methanogenesis. Geochim Cosmochim Acta 48:1987–2004

Neubauer SC, Franklin RB, Berrier DJ (2013) Saltwater intrusion into tidal freshwater marshes alters the biogeochemical processing of organic carbon. Biogeosciences 10:8171–8183

Noe GB, Krauss KW, Lockaby BG, Conner WH, Hupp CR (2012) The effect of increasing salinity and forest mortality on soil nitrogen and phosphorus mineralization in tidal freshwater forested wetlands. Biogeochemistry. doi: 10.1007/s10533-012-9805-1

Sexton SG (2002) Rates of carbon re-mineralization in coastal wetland sediments under sulfate reducing and Methanogenic conditions: Implications for sea level rise. Thesis, University of North Carolina at Wilmington, Wilmington, NC

Sverdrup HU, Johnson MW, Fleming RH (1942) The oceans. Prentice-Hall, Engelwood Cliffs

Weston NB, Neubauer SC, Velinsky DJ, Vile MA (2014) Net ecosystem carbon exchange and the greenhouse gas balance of tidal marshes along an estuarine salinity gradient. Biogeochemistry 120:163–189

Williams AA, Lauer NT, Hackney CT (2014) Soil phosphorous dynamics and saltwater intrusion in a Florida estuary. Wetlands. doi: 10.1007/s13157-014-0520-7