Spatial and seasonal variations of nitrate-based new production and primary production in the South China Sea

被引:220
作者
Chen, YFL [1 ]
机构
[1] Natl Sun Yat Sen Univ, Dept Marine Resources, Kaohsiung 80424, Taiwan
关键词
nitrate-based new production; primary production; N-2; fixation; nutrient enrichment experiment; South China Sea;
D O I
10.1016/j.dsr.2004.11.001
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
The results from eight cruises that were conducted between 2000 and 2003 are used to elucidate the spatial and temporal dynamics of both nitrate-based new production (NP) and primary production (PP) in the northern South China Sea (SCS). The spatial variation study, which was based on the results of three cruises, compares the differences among the shelf, slope and basin of the SCS in the spring and fall. Temporal (seasonal) variation was studied during eight cruises at a basin site and two shelf sites in the SCS. Nutrient enrichment experiments were conducted concurrently with field biochemical surveys to evaluate the role of nitrogen, phosphorus and iron in limiting phytoplankton growth. The results clearly show that winter was the most productive season of the year in the basin and possibly on the shelf as well. Integrated primary production (IPP) and nitrate-based new production (INP) of the basin were 0.55 and 0.26g C m(-2) d(-1), respectively, in winter; 0.26 and 0.07 g C m(-2) d(-1), respectively, in spring; 0.19 and 0.03 g C m(-2) d(-1). respectively, in summer; and 0.28 and 0.05 g C m(-2) d(-1), respectively, in fall. The f-ratio (INP/IPP) was as high as 0.47 in winter, decreasing to 0.29-0.36 in early mid-March and 0.14-0.20 from late March to October, and fluctuated coincidentally with abundance of nitrate. The presence of nutrients in the surface layer, supporting the winter productivity, could be attributed to the shallow nitracline, which made nutrient mixing possible when a cold and strong northwest monsoon prevailed, reflecting the vital role of nitrate availability in modulating new production in the SCS. Spatial variation of INP or IPP among the basin, slope and shelf are not as obvious as the seasonal variations because of great local variability. In general, however, the shelf was more productive than the slope and the basin. In the spring, mean IPP and INP in the shelf, slope and basin were 0.72 and 0.16, 0.34 and 0.10, 0.49 and 0.15 g C m(-2) d(-1), respectively. In the fall, IPP and INP in the shelf and basin were 0.45 and 0.14g C m(-2) d(-1), and 0.34 and 0.09 g C m(-2) d(-1), respectively. There exists a positive correlation between INP and IPP for the spatial data set in either the spring or the fall. f-Ratios are not statistically different between spring (0.28) and fall (0.29). While both nitrate availability and irradiance significantly modulated the spatial variations of production, effects of nitrate availability were more prevalent than light intensity. Diatoms and coccolithophores prospered in winter in the basin or on the shelf in both winter and summer, when surface water was rich in nitrate, and were more abundant than in summer in the basin when nitrate was scarce. The results of the nutrient enrichment experiments also supported the role of nitrogen availability in productivity of the SCS water. In these experiments, chlorophyll a concentration and primary productivity responded to nitrate supplementation, while iron and phosphorus supplementation did not stimulate phytoplankton growth. The predicted ratio of nitrate-based NP to N-2-fixation-based NP from Trichodesmium is greater than 50:1, indicating that nitrate derived from the subsurface water was the main source of new nitrogen, which supported phytoplankton growth in the SCS. (C) 2004 Elsevier Ltd. All rights reserved.
引用
收藏
页码:319 / 340
页数:22
相关论文
共 41 条
[1]  
[Anonymous], 1992, TERR ATMOS OCEAN SCI, DOI DOI 10.3319/TAO.1992.3.4.587(O)
[2]  
[Anonymous], 1972, A Practical Handbook of Seawater Analysis, DOI [DOI 10.1002/IROH.19700550118, DOI 10.25607/OBP-1791]
[3]   Elemental composition of marine Prochlorococcus and Synechococcus:: Implications for the ecological stoichiometry of the sea [J].
Bertilsson, S ;
Berglund, O ;
Karl, DM ;
Chisholm, SW .
LIMNOLOGY AND OCEANOGRAPHY, 2003, 48 (05) :1721-1731
[4]  
BORGNE RL, 2002, DEEP SEA RES 2, V49, P2471
[5]   Does planktonic community structure determine downward particulate organic carbon flux in different oceanic provinces? [J].
Boyd, PW ;
Newton, PP .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 1999, 46 (01) :63-91
[6]   Marine nitrogen fixation: what's the fuss? [J].
Capone, DG .
CURRENT OPINION IN MICROBIOLOGY, 2001, 4 (03) :341-348
[7]  
Chen YLL, 2000, CONT SHELF RES, V20, P437
[8]  
Chen YLL, 1999, ESTUAR COAST SHELF S, V48, P59
[9]   Nitrogen modulates phytoplankton growth in spring in the South China Sea [J].
Chen, YLL ;
Chen, HY ;
Karl, DM ;
Takahashi, M .
CONTINENTAL SHELF RESEARCH, 2004, 24 (4-5) :527-541
[10]   Distribution and downward flux of Trichodesmium in the South China Sea as influenced by the transport from the Kuroshio Current [J].
Chen, YLL ;
Chen, HY ;
Lin, YH .
MARINE ECOLOGY PROGRESS SERIES, 2003, 259 :47-57