A biophysical representation of seagrass growth for application in a complex shallow-water biogeochemical model

被引:38
作者
Baird, Mark E. [1 ]
Adams, Matthew P. [2 ]
Babcock, Russell C. [1 ]
Oubelkheir, Kadija [1 ]
Mongin, Mathieu [1 ]
Wild-Allen, Karen A. [1 ]
Skerratt, Jennifer [1 ]
Robson, Barbara J. [3 ]
Petrou, Katherina [4 ]
Ralph, Peter J. [4 ]
O'Brien, Katherine R. [2 ]
Carter, Alex B. [5 ]
Jarvis, Jessie C. [5 ]
Rasheed, Michael A. [5 ]
机构
[1] CSIRO, Oceans & Atmosphere, Hobart, Tas, Australia
[2] Univ Queensland, Sch Chem Engn, Brisbane, Qld, Australia
[3] CSIRO, Land & Water, Canberra, ACT, Australia
[4] Univ Technol Sydney, Fac Sci, Plant Funct Biol & Climate Change Cluster, Sydney, NSW 2007, Australia
[5] James Cook Univ, Ctr Trop Water & Aquat Ecosyst Res, Cairns, Australia
关键词
Gladstone Harbour; Leaf area; Zostera; Halophila; Photosynthesis; Seagrass; ZOSTERA-MARINA L; N-P RATIOS; CARBON TRANSLOCATION; THALASSIA-TESTUDINUM; SCLERACTINIAN CORAL; ORGANIC-CARBON; CHESAPEAKE BAY; LIGHT; PHOTOSYNTHESIS; PHOSPHORUS;
D O I
10.1016/j.ecolmodel.2015.12.011
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Seagrasses are a critical component of the healthy functioning of many coastal marine ecosystems. Capturing the dynamics of seagrass communities requires both a detailed representation of processes such as seagrass nutrient uptake and photosynthesis, as well as models of light penetration, water column and sediment biogeochemical processes and other ecosystem characteristics that determine the environmental state. Here we develop a new two-state, 13-parameter seagrass model with the aim of providing sufficient detail to represent light and nutrient limitation, but simple enough to be coupled into a 60 state variable biogeochemical model. The novel formulation is built around a nitrogen-specific leaf area parameter, Omega, that is well-constrained and is used in calculating both the rate of photosynthesis and the fraction of the seafloor covered by seagrass,A(eff), where A(eff) = 1 - exp(-Omega SG(A)) and SG(A) is the aboveground areal seagrass biomass. The model also contains terms for the uptake of nutrients from multiple layers of varying-porosity sediments, translocation of organic matter between leaves and roots, respiration and simple mortality terms. The model is applied to Gladstone Harbour, a macro-tidal sub-tropical estuary in northeast Australia, and is able to simulate realistic spatial seagrass distributions. A simplified form of the model is derived, which can be used to predict seagrass light-limited growth based on five measurable species-specific parameters (maximum growth rate, mortality rate, compensation irradiance, leaf blade angle and nitrogen-specific leaf area). The steady-state percent coverage of seagrass achieved at varying light levels and mortality intensity is calculated as a means of understanding the dynamics of the new seagrass model. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:13 / 27
页数:15
相关论文
共 83 条
[71]   Effects of water velocity and canopy morphology on ammonium uptake by seagrass communities [J].
Thomas, FIM ;
Cornelisen, CD ;
Zande, JM .
ECOLOGY, 2000, 81 (10) :2704-2713
[72]  
Thomas R., 2010, SEAGRASSES PORT CURT
[73]   Overview of the physiological ecology of carbon metabolism in seagrasses [J].
Touchette, BW ;
Burkholder, JM .
JOURNAL OF EXPERIMENTAL MARINE BIOLOGY AND ECOLOGY, 2000, 250 (1-2) :169-205
[74]   Positive feedbacks in seagrass ecosystems: Implications for success in conservation and restoration [J].
van der Heide, Tjisse ;
van Nes, Egbert H. ;
Geerling, Gertjan W. ;
Smolders, Alfons J. P. ;
Bouma, Tjeerd J. ;
van Katwijk, Marieke M. .
ECOSYSTEMS, 2007, 10 (08) :1311-1322
[75]   MEADOW MAINTENANCE, GROWTH AND PRODUCTIVITY OF A MIXED PHILIPPINE SEAGRASS BED [J].
VERMAAT, JE ;
AGAWIN, NSR ;
DUARTE, CM ;
FORTES, MD ;
MARBA, N ;
URI, JS .
MARINE ECOLOGY PROGRESS SERIES, 1995, 124 (1-3) :215-225
[76]   What lies beneath: Why knowledge of belowground biomass dynamics is crucial to effective seagrass management [J].
Vonk, J. Arie ;
Christianen, Marjolijn J. A. ;
Stapel, Johan ;
O'Brien, Katherine R. .
ECOLOGICAL INDICATORS, 2015, 57 :259-267
[77]   Anthropogenic impacts on the ecosystems of coastal lagoons: modelling fundamental biogeochemical processes and management implications [J].
Webster, IT ;
Harris, GP .
MARINE AND FRESHWATER RESEARCH, 2004, 55 (01) :67-78
[78]   TRANSPORT OF CARBON AND EXCRETION OF DISSOLVED ORGANIC-CARBON BY L LEAVES AND ROOTS RHIZOMES IN SEAGRASSES AND THEIR EPIPHYTES [J].
WETZEL, RG ;
PENHALE, PA .
AQUATIC BOTANY, 1979, 6 (02) :149-158
[79]   Applied coastal biogeochemical modelling to quantify the environmental impact of fish farm nutrients and inform managers [J].
Wild-Allen, Karen ;
Herzfeld, Mike ;
Thompson, Peter A. ;
Rosebrock, Uwe ;
Parslow, John ;
Volkman, John K. .
JOURNAL OF MARINE SYSTEMS, 2010, 81 (1-2) :134-147
[80]  
York P, 2013, RES MONITORING MANAG