Seasonal carbonate chemistry variability in marine surface waters of the US Pacific Northwest

被引:38
作者
Fassbender, Andrea J. [1 ,2 ]
Alin, Simone R. [2 ]
Feely, Richard A. [2 ]
Sutton, Adrienne J. [2 ]
Newton, Jan A. [3 ]
Krembs, Christopher [4 ]
Bos, Julia [4 ]
Keyzers, Mya [4 ]
Devol, Allan [5 ]
Ruef, Wendi [5 ]
Pelletier, Greg [4 ]
机构
[1] Monterey Bay Aquarium Res Inst, Moss Landing, CA 95039 USA
[2] NOAA, Pacific Marine Environm Lab, 7600 Sand Point Way Ne, Seattle, WA 98115 USA
[3] Univ Washington, Appl Phys Lab, Seattle, WA 98105 USA
[4] Washington State Dept Ecol, Olympia, WA 98504 USA
[5] Univ Washington, Sch Oceanog, Seattle, WA 98195 USA
关键词
ARAGONITE SATURATION STATE; TOTAL INORGANIC CARBON; OCEAN ACIDIFICATION; ANTHROPOGENIC CO2; TOTAL ALKALINITY; COASTAL ZONE; SEA-WATER; DIOXIDE; PH; SEAWATER;
D O I
10.5194/essd-10-1367-2018
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Fingerprinting ocean acidification (OA) in US West Coast waters is extremely challenging due to the large magnitude of natural carbonate chemistry variations common to these regions. Additionally, quantifying a change requires information about the initial conditions, which is not readily available in most coastal systems. In an effort to address this issue, we have collated high-quality publicly available data to characterize the modern seasonal carbonate chemistry variability in marine surface waters of the US Pacific Northwest. Underway ship data from version 4 of the Surface Ocean CO2 Atlas, discrete observations from various sampling platforms, and sustained measurements from regional moorings were incorporated to provide similar to 100 000 inorganic carbon observations from which modern seasonal cycles were estimated. Underway ship and discrete observations were merged and gridded to a 0.1 degrees similar to 0.1 degrees scale. Eight unique regions were identified and seasonal cycles from grid cells within each region were averaged. Data from nine surface moorings were also compiled and used to develop robust estimates of mean seasonal cycles for comparison with the eight regions. This manuscript describes our methodology and the resulting mean seasonal cycles for multiple OA metrics in an effort to provide a large-scale environmental context for ongoing research, adaptation, and management efforts throughout the US Pacific Northwest. Major findings include the identification of unique chemical characteristics across the study domain. There is a clear increase in the ratio of dissolved inorganic carbon (DIC) to total alkalinity (TA) and in the seasonal cycle amplitude of carbonate system parameters when moving from the open ocean North Pacific into the Salish Sea. Due to the logarithmic nature of the pH scale (pH = -log(10)[H+], where [H+] is the hydrogen ion concentration), lower annual mean pH values (associated with elevated DIC V TA ratios) coupled with larger magnitude seasonal pH cycles results in seasonal [H+] ranges that are similar to 27 times larger in Hood Canal than in the neighboring North Pacific open ocean. Organisms living in the Salish Sea are thus exposed to much larger seasonal acidity changes than those living in nearby open ocean waters. Additionally, our findings suggest that lower buffering capacities in the Salish Sea make these waters less efficient at absorbing anthropogenic carbon than open ocean waters at the same latitude. - Surface Ocean CO2 Atlas version 4 coastal data, https://doi.pangaea.de/10.1594/PANGAEA.866856 (Bakker et al., 2016a); - National Oceanic and Atmospheric Administration (NOAA) West Coast Ocean Acidification cruise data, https://doi.org/10.3334/CDIAC/otg.CLIVAR_NACP_West_Coast_Cruise_2007 (Feely and Sabine, 2013); https://doi.org/10.7289/V5JQ0XZ1 (Feely et al., 2015b); https://data.nodc.noaa.gov/cgi-bin/iso?id=gov.noaa.nodc:0157445 (Feely et al., 2016a); https://doi.org/10.7289/V5C53HXP (Feely et al., 2015a); - University of Washington (UW) and Washington Ocean Acidification Center cruise data, https://doi.org/10.5281/zenodo.1184657 (Fassbender et al., 2018); - Washington State Department of Ecology seaplane data, https://doi.org/10.5281/zenodo.1184657 (Fassbender et al., 2018); - NOAA Moored Autonomous pCO(2) (MAPCO2) buoy data, https://doi. org/10.3334/CDIAC/OTG.TSM_LAPUSH_125W_48N (Sutton et al., 2012); https://doi. org/10.3334/CDIAC/OTG.TSM_WA_125W_47N (Sutton et al., 2013); https://doi.org/10.3334/CDIAC/OTG.TSM_DABOB_122W_478N (Sutton et al., 2014a); https://doi.org/10.3334/CDIAC/OTG.TSM_TWANOH_123W_47N (Sutton et al., 2016a); - UW Oceanic Remote Chemical/Optical Analyzer buoy data, https://doi.org/10.5281/zenodo.1184657 (Fassbender et al., 2018); - NOAA Pacific Coast Ocean Observing System cruise data, https://doi.org/10.5281/zenodo.1184657 (Fassbender et al., 2018).
引用
收藏
页码:1367 / 1401
页数:35
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