Strengthening seasonal marine CO2 variations due to increasing atmospheric CO2 (original) (raw)
References
Le Quéré, C. et al. Global carbon budget 2016. Earth Syst. Sci. Data8, 605–649 (2016). Article Google Scholar
Rodgers, K. B. et al. A wintertime uptake window for anthropogenic CO2 in the North Pacific. Glob. Biochem. Cycles22, GB2020 (2008). Google Scholar
Hauck, J. & Völker, C. Rising atmospheric CO2 leads to large impact of biology on Southern Ocean CO2 uptake via changes of the Revelle factor. Geophys. Res. Lett.42, 1459–1464 (2015). ArticleCAS Google Scholar
Doney, S., Fabry, V., Feely, R. A. & Kleypas, J. Ocean acidification: the other CO2 problem. Annu. Rev. Mar. Sci.1, 169–192 (2009). Article Google Scholar
Sarmiento, J. M. et al. Trends and regional distributions of land and ocean carbon sinks. Biogeosciences7, 2351–2367 (2010). ArticleCAS Google Scholar
Sarmiento, J. & Gruber, N. Ocean Biogeochemical Dynamics (Princeton Univ. Press, New Jersey, 2006).
Orr, J. C. et al. Anthropogenic ocean acidification over the twenty-first century and its impact on calcifying organisms. Nature437, 681–686 (2005). ArticleCAS Google Scholar
Delille, B. et al. Response of primary production and calcification to changes of p CO2 during experimental blooms of the coccolithophorid Emiliania huxleyi. Glob. Biogeochem. Cycles19, GB2023 (2005).
McNeil, B. I. & Sasse, T. P. Future ocean hypercapnia driven by anthropogenic amplification of the natural CO2 cycle. Nature529, 383–386 (2016). ArticleCAS Google Scholar
Sabine, C. L. et al. Surface Ocean CO2 Atlas (SOCAT) gridded data products. Earth Syst. Sci. Data5, 145–153 (2013). Article Google Scholar
Bakker, D. C. E. et al. A multi-decade record of high-quality f CO2 data in version 3 of the Surface Ocean CO2 Atlas (SOCAT). Earth Syst. Sci. Data8, 383–413 (2016). Article Google Scholar
Landschützer, P. et al. A neural network-based estimate of the seasonal to inter-annual variability of the Atlantic Ocean carbon sink. Biogeosciences10, 7793–7815 (2013). Article Google Scholar
Landschützer, P., Gruber, N. & Bakker, D. C. E. Decadal variations and trends of the global ocean carbon sink. Glob. Biogeochem. Cycles30, 1396–1417 (2016). Article Google Scholar
Dore, J. E., Lukas, R., Sadler, D. W., Church, M. J. & Karl, D. M. Physical and biogeochemical modulation of ocean acidification in the central North Pacific. Proc. Natl. Acad. Sci. USA106, 12235–12240 (2009). ArticleCAS Google Scholar
Gruber, N., Keeling, C. D. & Bates, N. R. Interannual variability in the North Atlantic Ocean carbon sink. Science298, 2374–2378 (2002). ArticleCAS Google Scholar
Bates, N. R. Multi-decadal uptake of carbon dioxide into subtropical mode water of the North Atlantic Ocean. Biogeosciences9, 2649–2659 (2012). ArticleCAS Google Scholar
Phillips, H. E. & Joyce, T. M. Bermuda’s tale of two time series: Hydrostation ‘S’ and BATS. J. Phys. Oceanogr.37, 554–571 (2006). Article Google Scholar
Takahashi, T., Olafsson, J., Goddard, J., Chipman, D. & Sutherland, S. Seasonal variation of CO2 and nutrients in the high-latitude surface oceans: a comparative study. Glob. Biogeochem. Cycles7, 843–878 (1993). ArticleCAS Google Scholar
Takahashi, T. et al. Global sea-air CO2 flux based on climatological surface ocean p CO2, and seasonal biological and temperature effects. Deep.-Sea Res. II49, 1601–1622 (2002). ArticleCAS Google Scholar
Gorgues, T., Aumont, O. & Rodgers, K. B. A mechanistic account of increasing seasonal variations in the rate of ocean uptake of anthropogenic carbon. Biogeosciences7, 2581–2589 (2010). ArticleCAS Google Scholar
Le Quéré, C. et al. Saturation of the Southern Ocean CO2 sink due to recent climate change. Science316, 1735–1738 (2007). Article Google Scholar
Landschützer, P. et al. The reinvigoration of the Southern Ocean carbon sink. Science349, 1221–1224 (2015). Article Google Scholar
DeVries, T., Holzer, M. & Primeau, F. Recent increase in oceanic carbon uptake driven by weaker upper-ocean overturning. Nature542, 215–218 (2017). ArticleCAS Google Scholar
Monteiro, P. M. S. et al. Intraseasonal variability linked to sampling alias in air-sea CO2 fluxes in the Southern Ocean. Geophys. Res. Lett.42, 8507–8514 (2015). ArticleCAS Google Scholar
Rödenbeck, C. et al Data-based estimates of the ocean carbon sink variability—first results of the Surface Ocean p CO2 Mapping intercomparison (SOCOM). Biogeosciences12, 7251–7278 (2015). Article Google Scholar
Bates, N. et al. A time-series view of changing ocean chemistry due to ocean uptake of anthropogenic CO2 and ocean acidification. Oceanography27, 126–141 (2014). Article Google Scholar
Lauvset, S. K., Gruber, N., Landschützer, P., Olsen, A. & Tjiputra, J. Trends and drivers in global surface ocean pH over the past 3 decades. Biogeosciences12, 1285–1298 (2015). ArticleCAS Google Scholar
Gruber, N. et al. Rapid progression of ocean acidification in the California Current System. Science337, 220–223 (2012). ArticleCAS Google Scholar
McKinley, G. A. et al. Timescales for detection of trends in the ocean carbon sink. Nature530, 469–472 (2016). Article Google Scholar
Graven, H. D. et al. Enhanced seasonal exchange of CO2 by northern ecosystems since 1960. Science341, 1085–1089 (2013). ArticleCAS Google Scholar
Lovenduski, N. S., Gruber, N., Doney, S. C. & Lima, D. I. Enhanced CO2 outgassing in the Southern Ocean from a positive phase of the Southern Annular Mode. Glob. Biogeochem. Cycles21, GB2026 (2007). Article Google Scholar
Zeebe, P. E. & Wolf-Gladrow, D. CO2in Seawater: Equilibrium, Kinetics, Isotopes (Elsevier, Amsterdam, 2001).
Lee, K. et al. Global relationships of total alkalinity with salinity and temperature in surface waters of the world’s oceans. Geophys. Res. Lett.33, L19605 (2006). Article Google Scholar
Reynolds, R. W., Rayner, N. A., Smith, T. M., Stokes, D. C. & Wang, W. An improved in situ and satellite SST analysis for climate. J. Clim.15, 1609–1625 (2002). Article Google Scholar
Lauvset, S. K. et al. A new global interior ocean mapped climatology: the 1°×1° GLODAP version 2. Earth Syst. Sci. Data8, 325–340 (2016). Google Scholar
Olsen, A. et al. The Global Ocean Data Analysis Project version 2 (GLODAPv2)—an internally consistent data product for the world ocean. Earth Syst. Sci. Data8, 297–323 (2016). Article Google Scholar
Key, R. et al. Global Ocean Data Analysis Project version 2 (GLODAPv2), ORNL/CDIAC-162, ND-P093 (Carbon Dioxide Information Analysis Center, 2015), https://doi.org/10.3334/CDIAC/OTG.NDP093_GLODAPv2.