Modeling Water Clarity and Light Quality in Oceans

被引:16
作者
Abdelrhman, Mohamed A. [1 ]
机构
[1] US EPA, Atlantic Ecol Div, Natl Hlth & Environm Effects Res Lab, Off Res & Dev, 27 Tarzwell Dr, Narragansett, RI 02882 USA
关键词
modeling; irradiance; oceans; phytoplankton;
D O I
10.3390/jmse4040080
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Phytoplankton is a primary producer of organic compounds, and it forms the base of the food chain in ocean waters. The concentration of phytoplankton in the water column controls water clarity and the amount and quality of light that penetrates through it. The availability of adequate light intensity is a major factor in the health of algae and phytoplankton. There is a strong negative coupling between light intensity and phytoplankton concentration (e.g., through self-shading by the cells), which reduces available light and in return affects the growth rate of the cells. Proper modeling of this coupling is essential to understand primary productivity in the oceans. This paper provides the methodology to model light intensity in the water column, which can be included in relevant water quality models. The methodology implements relationships from bio-optical models, which use phytoplankton chlorophyll a (chl-alpha) concentration as a surrogate for light attenuation, including absorption and scattering by other attenuators. The presented mathematical methodology estimates the reduction in light intensity due to absorption by pure seawater, chl-a pigment, non-algae particles (NAPs) and colored dissolved organic matter (CDOM), as well as backscattering by pure seawater, phytoplankton particles and NAPs. The methods presented facilitate the prediction of the effects of various environmental and management scenarios (e.g., global warming, altered precipitation patterns, greenhouse gases) on the wellbeing of phytoplankton communities in the oceans as temperature-driven chl-a changes take place.
引用
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页数:17
相关论文
共 23 条
[1]   VARIABILITY IN THE CHLOROPHYLL-SPECIFIC ABSORPTION-COEFFICIENTS OF NATURAL PHYTOPLANKTON - ANALYSIS AND PARAMETERIZATION [J].
BRICAUD, A ;
BABIN, M ;
MOREL, A ;
CLAUSTRE, H .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1995, 100 (C7) :13321-13332
[2]   SPECTRAL ABSORPTION-COEFFICIENTS OF LIVING PHYTOPLANKTON AND NONALGAL BIOGENOUS MATTER - A COMPARISON BETWEEN THE PERU UPWELLING AREA AND THE SARGASSO SEA [J].
BRICAUD, A ;
STRAMSKI, D .
LIMNOLOGY AND OCEANOGRAPHY, 1990, 35 (03) :562-582
[3]  
BUITEVELD H, 1994, PROC SPIE, V2258, P174
[4]   Simulation of MERIS measurements above selected ocean waters [J].
Fischer, J ;
Fell, F .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 1999, 20 (09) :1787-1807
[5]  
FOURNIER GR, 1994, P SOC PHOTO-OPT INS, V2258, P194, DOI 10.1117/12.190063
[6]   Seagrass depth limits in the Indian River Lagoon (Florida, USA): Application of an optical water quality model [J].
Gallegos, CL ;
Kenworthy, WJ .
ESTUARINE COASTAL AND SHELF SCIENCE, 1996, 42 (03) :267-288
[7]   Partitioning spectral absorption in case 2 waters: discrimination of dissolved and particulate components [J].
Gallegos, CL ;
Neale, PJ .
APPLIED OPTICS, 2002, 41 (21) :4220-4233
[8]   REFINING HABITAT REQUIREMENTS OF SUBMERSED AQUATIC VEGETATION - ROLE OF OPTICAL-MODELS [J].
GALLEGOS, CL .
ESTUARIES, 1994, 17 (1B) :187-199
[9]   Calculating optical water quality targets to restore and protect submersed aquatic vegetation: Overcoming problems in partitioning the diffuse attenuation coefficient for photosynthetically active radiation [J].
Gallegos, CL .
ESTUARIES, 2001, 24 (03) :381-397
[10]   Estimating Oceanic Primary Production Using Vertical Irradiance and Chlorophyll Profiles from Ocean Gliders in the North Atlantic [J].
Hemsley, Victoria S. ;
Smyth, Timothy J. ;
Martin, Adrian P. ;
Frajka-Williams, Eleanor ;
Thompson, Andrew F. ;
Damerell, Gillian ;
Painter, Stuart C. .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2015, 49 (19) :11612-11621