Modeling the timing of spring phytoplankton bloom and biological production of the Gulf of St. Lawrence (Canada): Effects of colored dissolved organic matter and temperature

被引:26
作者
Mei, Zhi-Ping [1 ]
Saucier, Francois. J. [1 ]
Le Fouest, Vincent [2 ,3 ]
Zakardjian, Bruno [4 ]
Sennville, Simon [1 ]
Xie, Huixiang [1 ]
Starr, Michel [5 ]
机构
[1] Univ Quebec, Inst Sci Mer Rimouski ISMER, Rimouski, PQ G5L 3A1, Canada
[2] Univ Paris 06, F-06238 Villefranche Sur Mer, France
[3] CNRS, Lab Oceanog Villefranche, F-06238 Villefranche Sur Mer, France
[4] Univ Sud Toulon Var, LSEET LEPI, F-83957 La Garde, France
[5] Inst Maurice Lamontagne, Direct Sci Ocean Ministere Peches & Oceans, Mont Joli, PQ G5H 3Z4, Canada
关键词
Gulf of St. Lawrence; Marine ecosystem model; Temperature; CDOM; Phytoplankton bloom; Biological production; OPTICAL-PROPERTIES; METABOLIC THEORY; BIOGENIC CARBON; SCOTIAN SHELF; GROWTH; OCEAN; ABSORPTION; CDOM; SIZE; SEA;
D O I
10.1016/j.csr.2010.10.003
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
The effects of colored dissolved organic matter (CDOM) from freshwater runoff and seasonal cycle of temperature on the dynamic of phytoplankton and zooplankton biomass and production in the Gulf of St. Lawrence (GSL) are studied using a 3-D coupled physical-plankton ecosystem model. Three simulations are conducted: (1) the reference simulation based on Le Fouest et al. (2005), in which light attenuation by CDOM is not considered and maximum growth rate (mu(max)) of phytoplankton and zooplankton are not temperature-dependent (REF simulation); (2) light attenuation by CDOM is added to REF simulation (CDOM simulation); and (3) in addition to CDOM, the mu(max) of phytoplankton and zooplankton are regulated by temperature (CDOM + TEMP simulation). CDOM simulation shows that CDOM substantially reduces phytoplankton biomass and production in the Lower St. Lawrence Estuary (LSLE), but slightly reduces overall primary production in the GSL. In the LSLE, the spring phytoplankton bloom is delayed from mid-March to mid-April, resulted from light attenuation by CDOM. The CDOM + TEMP simulation shows that the spring phytoplankton bloom in the LSLE is further delayed to July, which is more consistent with observations. Annual primary production is reduced by 33% in CDOM + TEMP simulation from REF and CDOM simulations. Zooplankton production is the same in all three simulations, and export of organic matter to depth is reduced in CDOM + TEMP simulation, suggesting that temperature controlled growth of phytoplankton and zooplankton enhances the coupling between primary production and zooplankton production under the seasonal temperature cycle of the GSL. (C) 201 0 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2027 / 2042
页数:16
相关论文
共 76 条
[1]  
Blough N.V., 2002, BIOGEOCHEMISTRY MARI, P509, DOI [DOI 10.1016/B978-012323841-2/50012-9, 10.1016/B978-012323841-2/50012-9]
[2]   Dependence of light-saturated photosynthesis on temperature and community structure [J].
Bouman, H ;
Platt, T ;
Sathyendranath, S ;
Stuart, V .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2005, 52 (07) :1284-1299
[3]   Temperature as indicator of optical properties and community structure of marine phytoplankton: implications for remote sensing [J].
Bouman, HA ;
Platt, T ;
Sathyendranath, S ;
Li, WKW ;
Stuart, V ;
Fuentes-Yaco, C ;
Maass, H ;
Horne, EPW ;
Ulloa, O ;
Lutz, V ;
Kyewalyanga, M .
MARINE ECOLOGY PROGRESS SERIES, 2003, 258 :19-30
[4]   The relative importance of chlorophyll and colored dissolved organic matter (CDOM) to the prediction of the diffuse attenuation coefficient in shallow estuaries [J].
Branco, AB ;
Kremer, JN .
ESTUARIES, 2005, 28 (05) :643-652
[5]  
Bugden G.L., 1982, Canadian Technical Report of Fisheries and Aquatic Sciences, V1078, P1
[6]  
Caron DA, 2008, LIMNOL OCEANOGR, V53, P2048
[7]   A comparison of global estimates of marine primary production from ocean color [J].
Carr, Mary-Elena ;
Friedrichs, Marjorie A. M. ;
Schmeltz, Marjorie ;
Aita, Maki Noguchi ;
Antoine, David ;
Arrigo, Kevin R. ;
Asanuma, Ichio ;
Aumont, Olivier ;
Barber, Richard ;
Behrenfeld, Michael ;
Bidigare, Robert ;
Buitenhuis, Erik T. ;
Campbell, Janet ;
Ciotti, Aurea ;
Dierssen, Heidi ;
Dowell, Mark ;
Dunne, John ;
Esaias, Wayne ;
Gentili, Bernard ;
Gregg, Watson ;
Groom, Steve ;
Hoepffner, Nicolas ;
Ishizaka, Joji ;
Kameda, Takahiko ;
Le Quere, Corinne ;
Lohrenz, Steven ;
Marra, John ;
Melin, Frederic ;
Moore, Keith ;
Morel, Andre ;
Reddy, Tasha E. ;
Ryan, John ;
Scardi, Michele ;
Smyth, Tim ;
Turpie, Kevin ;
Tilstone, Gavin ;
Waters, Kirk ;
Yamanaka, Yasuhiro .
DEEP-SEA RESEARCH PART II-TOPICAL STUDIES IN OCEANOGRAPHY, 2006, 53 (5-7) :741-770
[8]  
Chadwick M., 1991, Canadian Special Publication of Fisheries and Aquatic Sciences, V113, P125
[9]   Biogeochemical cycling in the oligotrophic ocean: Redfield and non-Redfield models [J].
Christian, JR .
LIMNOLOGY AND OCEANOGRAPHY, 2005, 50 (02) :646-657
[10]   An empirical model of the phytoplankton chlorophyll:carbon ratio - The conversion factor between productivity and growth rate [J].
Cloern, JE ;
Grenz, C ;
VidergarLucas, L .
LIMNOLOGY AND OCEANOGRAPHY, 1995, 40 (07) :1313-1321