Adaptation of global primary production model to the Greenland Sea conditions: parameterization and monitoring for 1998-2022

被引:0
作者
Cherkasheva, Aleksandra [1 ]
Manurov, Rustam [1 ]
Kowalczuk, Piotr [1 ]
Loginova, Alexandra N. [1 ]
Zablocka, Monika [1 ]
Bracher, Astrid [2 ,3 ]
机构
[1] Polish Acad Sci, Inst Oceanol, Sopot, Poland
[2] Alfred Wegener Inst Polar & Marine Res, Bremerhaven, Germany
[3] Univ Bremen, Inst Environm Phys, Bremen, Germany
关键词
primary production; ocean colour; remote sensing; regional model; model development; Greenland Sea; OCEANIC PRIMARY PRODUCTION; MARINE PRIMARY PRODUCTION; DISSOLVED ORGANIC-MATTER; ARCTIC-OCEAN; CHLOROPHYLL-A; PHYTOPLANKTON PRODUCTION; ABSORPTION-COEFFICIENTS; BIOOPTICAL PROPERTIES; SURFACE WATERS; BEAUFORT SEA;
D O I
10.3389/fmars.2024.1491180
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Phytoplankton are responsible for releasing half of the world's oxygen and for removing large amounts of carbon dioxide from surface waters. Despite many studies on the topic conducted in the past decades, we are still far from a good understanding of ongoing rapid changes in the Arctic Ocean and how they will affect phytoplankton and the whole ecosystem. An example is the difference in net primary production modelling estimates, which differ twice globally and fifty times when only the Arctic region is considered. Here, we aim to improve the quality of Greenland Sea primary production estimates, by testing different versions of primary production model against in situ data and then calculating regional estimates and trends for 1998-2022 for those performing best. As a baseline, we chose the commonly used global primary production model and tested it with different combinations of empirical relationships and input data. Local empirical relationships were taken from measurements by the literature and derived from the unpublished data of Institute of Oceanology of Polish Academy of Sciences across the Fram Strait. For validation, we took historical net primary production 14C data from literature and added to it our own gross primary production O2 measurements. Field data showed good agreement between primary production measured with 14C and O2 evolution methods. From all the model setups, those including local chlorophyll a profile and local absorption spectrum best reproduced in situ data. Our modelled regional annual primary production estimates are equal to 346 TgC/year for the Nordic Seas region and 342 TgC/year for the Greenland Sea sector of the Arctic defined as 45 degrees W-15 degrees E, 66 degrees 33 ' N-90 degrees N. These values are higher than those previously reported. Monthly values show a seasonal cycle with less monthly variability than previously reported. No significant increase or decrease in primary production was observed when studying regionally averaged trends. The accuracy of the selected here model setups to reproduce the field data in terms of Root Mean Square Difference is better than in the related Arctic studies. The improved primary production estimates strengthen researchers' ability to assess carbon flux and understand biogeochemical processes in the Greenland Sea.
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页数:18
相关论文
共 83 条
[1]   OCEANOGRAPHY OF THE EASTERN BERING SEA ICE-EDGE ZONE IN SPRING [J].
ALEXANDER, V ;
NIEBAUER, HJ .
LIMNOLOGY AND OCEANOGRAPHY, 1981, 26 (06) :1111-1125
[2]   Oceanic primary production .1. Adaptation of a spectral light-photosynthesis model in view of application to satellite chlorophyll observations [J].
Antoine, D ;
Morel, A .
GLOBAL BIOGEOCHEMICAL CYCLES, 1996, 10 (01) :43-55
[3]   Oceanic primary production .2. Estimation at global scale from satellite (coastal zone color scanner) chlorophyll [J].
Antoine, D ;
Andre, JM ;
Morel, A .
GLOBAL BIOGEOCHEMICAL CYCLES, 1996, 10 (01) :57-69
[4]   Apparent optical properties of the Canadian Beaufort Sea - Part 1: Observational overview and water column relationships [J].
Antoine, D. ;
Hooker, S. B. ;
Belanger, S. ;
Matsuoka, A. ;
Babin, M. .
BIOGEOSCIENCES, 2013, 10 (07) :4493-4509
[5]   Parameterization of vertical chlorophyll a in the Arctic Ocean: impact of the subsurface chlorophyll maximum on regional, seasonal, and annual primary production estimates [J].
Ardyna, M. ;
Babin, M. ;
Gosselin, M. ;
Devred, E. ;
Belanger, S. ;
Matsuoka, A. ;
Tremblay, J. -E. .
BIOGEOSCIENCES, 2013, 10 (06) :4383-4404
[6]   Under-Ice Phytoplankton Blooms: Shedding Light on the "Invisible" Part of Arctic Primary Production [J].
Ardyna, Mathieu ;
Mundy, C. J. ;
Mayot, Nicolas ;
Matthes, Lisa C. ;
Oziel, Laurent ;
Horvat, Christopher ;
Leu, Eva ;
Assmy, Philipp ;
Hill, Victoria ;
Matrai, Patricia A. ;
Gale, Matthew ;
Melnikov, Igor A. ;
Arrigo, Kevin R. .
FRONTIERS IN MARINE SCIENCE, 2020, 7
[7]   Phytoplankton dynamics in a changing Arctic Ocean [J].
Ardyna, Mathieu ;
Arrigo, Kevin Robert .
NATURE CLIMATE CHANGE, 2020, 10 (10) :892-903
[8]  
Arrigo K.R., 2011, Journal of Geophysical Research, V116, P1, DOI [DOI 10.1029/2011JC007151, 10.1029/2011JC007151]
[9]   Continued increases in Arctic Ocean primary production [J].
Arrigo, Kevin R. ;
van Dijken, Gert L. .
PROGRESS IN OCEANOGRAPHY, 2015, 136 :60-70
[10]   Leads in Arctic pack ice enable early phytoplankton blooms below snow-covered sea ice [J].
Assmy, Philipp ;
Fernandez-Mendez, Mar ;
Duarte, Pedro ;
Meyer, Amelie ;
Randelhoff, Achim ;
Mundy, Christopher J. ;
Olsen, Lasse M. ;
Kauko, Hanna M. ;
Bailey, Allison ;
Chierici, Melissa ;
Cohen, Lana ;
Doulgeris, Anthony P. ;
Ehn, Jens K. ;
Fransson, Agneta ;
Gerland, Sebastian ;
Hop, Haakon ;
Hudson, Stephen R. ;
Hughes, Nick ;
Itkin, Polona ;
Johnsen, Geir ;
King, Jennifer A. ;
Koch, Boris P. ;
Koenig, Zoe ;
Kwasniewski, Slawomir ;
Laney, Samuel R. ;
Nicolaus, Marcel ;
Pavlov, Alexey K. ;
Polashenski, Christopher M. ;
Provost, Christine ;
Rosel, Anja ;
Sandbu, Marthe ;
Spreen, Gunnar ;
Smedsrud, Lars H. ;
Sundfjord, Arild ;
Taskjelle, Torbjorn ;
Tatarek, Agnieszka ;
Wiktor, Jozef ;
Wagner, Penelope M. ;
Wold, Anette ;
Steen, Harald ;
Granskog, Mats A. .
SCIENTIFIC REPORTS, 2017, 7