Carbon and Nitrogen Cycling in a Shallow Productive Sub-Tropical Coastal Embayment (Western Moreton Bay, Australia): The Importance of Pelagic-Benthic Coupling

被引:32
|
作者
Ferguson, Angus J. P. [1 ,2 ]
Eyre, Bradley D. [1 ]
机构
[1] So Cross Univ, Ctr Coastal Biogeochem, Lismore, NSW 2480, Australia
[2] NSW Dept Environm Climate Change & Water, Sydney, NSW 2000, Australia
基金
澳大利亚研究理事会;
关键词
sub-tropical; benthic metabolism; benthic microalgae; pelagic-benthic coupling; macrofauna; carbon cycling; ecosystem; Moreton Bay; EXTRACELLULAR ORGANIC-CARBON; NEW-SOUTH-WALES; PHYTOPLANKTON PRODUCTIVITY; ECOSYSTEM METABOLISM; EUPHOTIC SEDIMENTS; LIGHT AVAILABILITY; NUTRIENT FLUXES; ESTUARY; DENITRIFICATION; RIVER;
D O I
10.1007/s10021-010-9378-6
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Climatic variables, water quality, benthic fluxes, sediment properties, and infauna were measured six times over an annual cycle in a shallow sub-tropical embayment to characterize carbon and nutrient cycling, and elucidate the role of pelagic-benthic coupling. Organic carbon (OC) inputs to the bay are dominated by phytoplankton (mean 74%), followed by catchment inputs (15%), and benthic microalgae (BMA; 9%). The importance of catchment inputs was highly variable and dependent on antecedent rainfall, with significant storage of allochthonous OC in sediments following high flow events and remineralization of this material supporting productivity during the subsequent period. Outputs were dominated by benthic mineralization (mean 59% of total inputs), followed by pelagic mineralization (16%), burial (1%), and assimilation in macrofaunal biomass (2%). The net ecosystem metabolism (NEM = production minus respiration) varied between -4 and 33% (mean 9%) of total primary production, whereas the productivity/respiration (p/r) ranged between 0.96 and 1.5 (mean 1.13). Up to 100% of the NEM is potentially removed via the demersal detritivore pathway. Dissolved inorganic nitrogen (DIN) inputs from the catchment contributed less than 1% of the total phytoplankton demand, implicating internal DIN recycling (pelagic 23% and benthic 19%) and potentially benthic dissolved organic nitrogen (DON) fluxes (27%) or N fixation (up to 47%) as important processes sustaining productivity. Although phytoplankton dominated OC inputs in this system, BMA exerted strong seasonal controls over benthic DIN fluxes, limiting pelagic productivity when mixing/photic depth approached 1.3. The results of this study suggest low DIN:TOC and net autotrophic NEM may be a significant feature of shallow sub-tropical systems where the mixing/photic depth is consistently less than 4.
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页码:1127 / 1144
页数:18
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