Origins and scales of hypoxia on the Louisiana shelf: Importance of seasonal plankton dynamics and river nutrients and discharge

被引:21
|
作者
Eldridge, Peter M. [3 ]
Roelke, Daniel L. [1 ,2 ]
机构
[1] Texas A&M Univ, Dept Wildlife & Fisheries Sci, College Stn, TX 77843 USA
[2] Texas A&M Univ, Dept Oceanog, College Stn, TX 77843 USA
[3] US EPA, Western Ecol Div, Pacific Coastal Ecol Branch, Newport, OR 97365 USA
关键词
Model; Hypoxia; Nutrients; Nitrogen; Phosphorus; Stoichiometry; River flow; Phytoplankton; Competition; Edibility; Sinking; Geochemistry; Global climate change; Ecosystem response; GULF-OF-MEXICO; MISSISSIPPI RIVER; COASTAL WATERS; ORGANIC-MATTER; PHYTOPLANKTON SUCCESSION; NONLIMITING NUTRIENTS; BOTTOM WATER; DEAD ZONE; PEG-MODEL; NITROGEN;
D O I
10.1016/j.ecolmodel.2009.04.054
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Management plans for the Mississippi River Basin call for reductions in nutrient concentrations up to 40% or more to reduce hypoxia in the Gulf of Mexico (GOM), while at the same time the government is considering new farm subsidies to promote development of biofuels from corn. Thus there are possibilities of both increasing and decreasing river nutrients depending on national priorities. River flow rates which also influence the extent of hypoxia on the shelf may be altered by global climate change. We have therefore developed a series of simulations to forecast ecosystem response to alterations in nutrient loading and river flow. We simulate ecosystem response and hypoxia events using a linked model consisting of multiple phytoplankton groups competing for nitrogen, phosphorus and light, zooplankton grazing that is influenced by prey edibility and stoichiometry, sub-pycnocline water-column metabolism that is influenced by sinking fecal pellets and algal cells, and multi-element sediment diagenesis. This model formulation depicts four areas of increasing salinity moving westward away from the Mississippi River point of discharge, where the surface mixed layer, four bottom layers and underlying sediments are represented in each area. The model supports the contention that a 40% decrease in river nutrient will substantially reduce the duration and areal extent of hypoxia on the shelf. But it also suggests that in low and middle salinity areas the hypoxia response is saturated with respect to nutrients, and that in high salinity regions small increases in nutrient and river flow will have disproportionally large effects on GOM hypoxia. The model simulations also suggest that river discharge is a stronger factor influencing hypoxia than river nutrients in the Mississippi River plume. Finally, the model simulations suggest that primary production in the low salinity regions is light limited while primary production in the higher salinity zones is phosphate limited during the May to October period when hypoxia is prevalent in the Mississippi River plume. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:1028 / 1042
页数:15
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共 48 条
  • [1] Origins and temporal scales of hypoxia on the Louisiana shelf: Importance of benthic and sub-pycnocline water metabolism
    Eldridge, Peter M.
    Morse, John W.
    [J]. MARINE CHEMISTRY, 2008, 108 (3-4) : 159 - 171
  • [2] Seasonal distributions of organic nutrients on the Louisiana continental shelf and their implications for nutrient limitation and hypoxia formation
    Sylvan, Jason B.
    Ammerman, James W.
    [J]. MARINE CHEMISTRY, 2013, 154 : 113 - 123
  • [3] Plankton community respiration, net ecosystem metabolism, and oxygen dynamics on the Louisiana continental shelf: Implications for hypoxia
    Murrell, Michael C.
    Stanley, Roman S.
    Lehrter, John C.
    Hagy, James D., III
    [J]. CONTINENTAL SHELF RESEARCH, 2013, 52 : 27 - 38
  • [4] Carbon Dynamics on the Louisiana Continental Shelf and Cross-Shelf Feeding of Hypoxia
    Brian Fry
    Dubravko Justić
    Philip Riekenberg
    Erick M. Swenson
    R. Eugene Turner
    Lixia Wang
    Lora Pride
    Nancy N. Rabalais
    Janis C. Kurtz
    John C. Lehrter
    Michael C. Murrell
    Elizabeth H. Shadwick
    Brandon Boyd
    [J]. Estuaries and Coasts, 2015, 38 : 703 - 721
  • [5] Carbon Dynamics on the Louisiana Continental Shelf and Cross-Shelf Feeding of Hypoxia
    Fry, Brian
    Justic, Dubravko
    Riekenberg, Philip
    Swenson, Erick M.
    Turner, R. Eugene
    Wang, Lixia
    Pride, Lora
    Rabalais, Nancy N.
    Kurtz, Janis C.
    Lehrter, John C.
    Murrell, Michael C.
    Shadwick, Elizabeth H.
    Boyd, Brandon
    [J]. ESTUARIES AND COASTS, 2015, 38 (03) : 703 - 721
  • [6] Seasonal plankton dynamics along a cross-shelf gradient
    Stenseth, Nils Chr.
    Llope, Marcos
    Anadon, Ricardo
    Ciannelli, Lorenzo
    Chan, Kung-Sik
    Hjermann, Dag O.
    Bagoien, Espen
    Ottersen, Geir
    [J]. PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2006, 273 (1603) : 2831 - 2838
  • [7] Seasonal distributions of organic nutrients on the Louisiana continental shelf and their implications for nutrient limitation and hypoxia formation (vol 154, pg 113, 2013)
    Sylvan, Jason B.
    Ammerman, James W.
    [J]. MARINE CHEMISTRY, 2014, 164 : 130 - 130
  • [8] Importance of the bacterial dynamics in model simulations of seasonal hypoxia
    Liu, Ling
    Lwiza, Kamazima M. M.
    Taylor, Gordon T.
    [J]. CONTINENTAL SHELF RESEARCH, 2015, 105 : 1 - 17
  • [9] Biogenic effects on cohesive sediment erodibility resulting from recurring seasonal hypoxia on the Louisiana shelf
    Briggs, Kevin B.
    Cartwright, Grace
    Friedrichs, Carl T.
    Shivarudruppa, S.
    [J]. CONTINENTAL SHELF RESEARCH, 2015, 93 : 17 - 26
  • [10] Spatially varying plankton synchrony patterns at seasonal and interannual scales in a well-connected shelf sea
    Honda, Isabel A.
    Ji, Rubao
    Solow, Andrew R.
    [J]. LIMNOLOGY AND OCEANOGRAPHY LETTERS, 2023, 8 (06) : 906 - 915