Nitrogen dynamics in Lake Okeechobee: forms, functions, and changes

被引:37
|
作者
James, R. Thomas [1 ]
Gardner, Wayne S. [2 ]
McCarthy, Mark J. [2 ]
Carini, Stephen A. [2 ]
机构
[1] S Florida Water Management Dist, Water Qual Treatment Technol Div, W Palm Beach, FL USA
[2] Univ Texas Austin, Inst Marine Sci, Port Aransas, TX USA
关键词
Lake Okeechobee; Nitrogen; N-15 isotope studies; Algal bloom; Nutrient budgets; N-fixation; Denitrification; Sediment-water interactions; DISSIMILATORY NITRATE REDUCTION; SUBTROPICAL LAKE; LIGHT AVAILABILITY; WATER-QUALITY; AMMONIUM DNRA; SHALLOW; FLORIDA; DENITRIFICATION; RATES; LIMITATION;
D O I
10.1007/s10750-011-0683-7
中图分类号
Q17 [水生生物学];
学科分类号
071004 ;
摘要
Total nitrogen (TN) in Lake Okeechobee, a large, shallow, turbid lake in south Florida, has averaged between 90 and 150 mu M on an annual basis since 1983. No TN trends are evident, despite major storm events, droughts, and nutrient management changes in the watershed. To understand the relative stability of TN, this study evaluates nitrogen (N) dynamics at three temporal/spatial levels: (1) annual whole lake N budgets, (2) monthly in-lake water quality measurements in offshore and nearshore areas, and (3) isotope addition experiments lasting 3 days and using N-15-ammonium ((NH4)-N-15 (+)) and N-15-nitrate ((NO3)-N-15 (-)) at two offshore locations. Budgets indicate that the lake is a net sink for N. TN concentrations were less variable than net N loads, suggesting that in-lake processes moderate these net loads. Monthly NO3 (-) concentrations were higher in the offshore area and higher in winter for both offshore and nearshore areas. Negative relationships between the percentage of samples classified as algal blooms (defined as chlorophyll a > 40 mu g l(-1)) and inorganic N concentrations suggest N-limitation. Continuous-flow experiments over intact sediment cores measured net fluxes (mu mol N m(-2) h(-1)) between 0 and 25 released from sediments for NH4 (+), 0-60 removed by sediments for NO3 (-), and 63-68 transformed by denitrification. Uptake rates in the water column (mu mol N m(-2) h(-1)) determined by isotope dilution experiments and normalized for water depth were 1,090-1,970 for NH4 (+) and 59-119 for NO3 (-). These fluxes are similar to previously reported results. Our work suggests that external N inputs are balanced in Lake Okeechobee by denitrification.
引用
收藏
页码:199 / 212
页数:14
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