Skip to main content
Have a personal or library account? Click to login
Large variability in ecosystem models explains uncertainty in a critical parameter for quantifying GPP with carbonyl sulphide Cover

Large variability in ecosystem models explains uncertainty in a critical parameter for quantifying GPP with carbonyl sulphide

Open Access
|Jan 2015

References

  1. Arneth A. , Harrison S. P. , Zaehle S. , Tsigaridis K. , Menon S. , co-authors . Terrestrial biogeochemical feedbacks in the climate system . Nat. Geosci . 2010 ; 3 ( 8 ): 525 532 . DOI: 10.1038/ngeo905 .
  2. Asaf D. , Rotenberg E. , Tatarinov F. , Dicken U. , Montzka S. A. , co-authors . Ecosystem photosynthesis inferred from measurements of carbonyl sulphide flux . Nat. Geosci . 2013 ; 6 ( 3 ): 186 190 . DOI: 10.1038/ngeo1730 .
  3. Baker I. T. , Denning A. S. , Stöckli R . North American gross primary productivity: regional characterization and interannual variability . Tellus B . 2010 ; 62 ( 5 ): 533 549 . DOI: 10.1111/j.1600-0889.2010.00492.x .
  4. Baker I. T. , Prihodko L. , Denning A. S. , Goulden M. , Miller S. , co-authors . Seasonal drought stress in the Amazon: reconciling models and observations . J. Geophys. Res. Biogeosci . 2008 ; 113 ( G00B01 ): DOI: 10.1029/2007JG000644 .
  5. Beer C. , Reichstein M. , Tomelleri E. , Ciais P. , Jung M. , co-authors . Terrestrial gross carbon dioxide uptake: global distribution and covariation with climate . Science . 2010 ; 329 : 834 838 . DOI: 10.1126/science.1184984 .
  6. Berkelhammer M. , Asaf D. , Still C. , Montzka S. , Noone D. , co-authors . Constraining surface carbon fluxes using in situ measurements of carbonyl sulfide and carbon dioxide . Glob. Biogeochem. Cycles . 2014 ; 28 ( 2 ): 161 179 . DOI: 10.1002/2013GB004644 .
  7. Berry J. , Wolf A. , Campbell J. E. , Baker I. , Blake N. , co-authors . A coupled model of the global cycles of carbonyl sulfide and CO2: a possible new window on the carbon cycle . J. Geophys. Res. Biogeosci . 2013 ; 118 ( 2 ): 842 852 . DOI: 10.1002/jgrg.20068 .
  8. Billesbach D. , Berry J. , Seibt U. , Maseyk K. , Torn M. , co-authors . Growing season eddy covariance measurements of carbonyl sulfide and {CO2} fluxes: {COS} and {CO2} relationships in southern great plains winter wheat . Agri. Forest Meteorol . 2014 ; 184 : 48 55 . DOI: 10.1016/j.agrformet.2013.06.007 .
  9. Blake N. J. , Campbell J. E. , Vay S. A. , Fuelberg H. E. , Huey L. G. , co-authors . Carbonyl sulfide (OCS): large-scale distributions over North America during INTEX-NA and relationship to CO2 . J. Geophys. Res. Atmos . 2008 ; 113 ( D09S90 ): DOI: 10.1029/2007JD009163 .
  10. Blake N. J. , Streets D. G. , Woo J.-H. , Simpson I. J. , Green J. , co-authors . Carbonyl sulfide and carbon disulfide: large-scale distributions over the western Pacific and emissions from Asia during TRACE-P . J. Geophys. Res. Atmos . 2004 ; 109 ( D15S05 ): DOI: 10.1029/2003JD004259 .
  11. Blonquist J. M. , Montzka S. A. , Munger J. W. , Yakir D. , Desai A. R. , co-authors . The potential of carbonyl sulfide as a proxy for gross primary production at flux tower sites . J. Geophys. Res. Biogeosci . 2011 ; 116 ( G04019 ): DOI: 10.1029/2011JG001723 .
  12. Campbell J. E. , Carmichael G. R. , Chai T. , Mena-Carrasco M. , Tang Y. , co-authors . Photosynthetic control of atmospheric carbonyl sulfide during the growing season . Science . 2008 ; 322 ( 5904 ): 1085 1088 . DOI: 10.1126/science.1164015 .
  13. Carmichael G. R. , Adhikary B. , Kulkarni S. , DAllura A. , Tang Y. , co-authors . Asian aerosols: current and year 2030 distributions and implications to human health and regional climate change . Environ. Sci. Technol . 2009 ; 43 ( 15 ): 5811 5817 . DOI: 10.1021/es8036803 .
  14. Coates C. J., Jr . The BAMS/EDSS/Models-3 I/O API: user manual . 2014 . UNC Institute for the Environment, Environmental Modeling Center, Raleigh, NC. Online at: http://www.cmascenter.org/ioapi/ .
  15. Commane R. , Herndon S. C. , Zahniser M. S. , Lerner B. M. , McManus J. B. , co-authors . Carbonyl sulfide in the planetary boundary layer: coastal and continental influences . J. Geophys. Res. Atmos . 2013 ; 118 ( 14 ): 8001 8009 . : 10.1002/jgrd.50581 .
  16. D'Allura A. , Kulkarni S. , Carmichael G. R. , Finardi S. , Adhikary B. , co-authors . Meteorological and air quality forecasting using the WRF–STEM model during the 2008 ARCTAS field campaign . Atmos. Environ . 2011 ; 45 ( 38 ): 6901 6910 . DOI: 10.1016/j.atmosenv.2011.02.073 .
  17. Fisher J. B. , Sikka M. , Oechel W. C. , Huntzinger D. N. , Melton J. R. , co-authors . Carbon cycle uncertainty in the Alaskan Arctic . Biogeosci. Discuss . 2014 ; 11 ( 2 ): 2887 2932 . DOI: 10.5194/bgd-11-2887-2014 .
  18. Foley J. A. , Prentice I. C. , Ramankutty N. , Levis S. , Pollard D. , co-authors . An integrated biosphere model of land surface processes, terrestrial carbon balance, and vegetation dynamics . Glob. Biogeochem. Cycles . 1996 ; 10 ( 4 ): 603 628 . DOI: 10.1029/96GB02692 .
  19. Friedlingstein P. , Cox P. , Betts R. , Bopp L. , von Bloh W. , co-authors . Climate-carbon cycle feedback analysis: results from the C[4]MIP model intercomparison . J. Clim . 2006 ; 19 ( 14 ): 3337 3353 . DOI: 10.1175/JCLI3800.1 .
  20. Friedlingstein P. , Meinshausen M. , Arora V. K. , Jones C. D. , Anav A. , co-authors . Uncertainties in CMIP5 climate projections due to carbon cycle feedbacks . J. Clim . 2014 ; 27 ( 2 ): 511 526 . DOI: 10.1175/JCLI-D-12-00579.1 .
  21. Guanter L. , Zhang Y. , Jung M. , Joiner J. , Voigt M. , co-authors . Global and time-resolved monitoring of crop photosynthesis with chlorophyll fluorescence . Proc. Natl. Acad. Sci. USA . 2014 ; 111 : 1327 E1333 . DOI: 10.1073/pnas.1320008111 .
  22. Hunter J. D . Matplotlib: a 2d graphics environment . Comput. Sci. Eng . 2007 ; 9 ( 3 ): 90 95 .
  23. Huntzinger D. , Post W. , Wei Y. , Michalak A. , West T. , co-authors . North American Carbon Program (NACP) regional interim synthesis: terrestrial biospheric model intercomparison . Ecol. Model . 2012 ; 232 : 144 157 . DOI: 10.1016/j.ecolmodel.2012.02.004 .
  24. Jones E. , Oliphant T. , Peterson P. , others . SciPy: open source scientific tools for Python . 2001 . Online at: http://www.scipy.org/ .
  25. Kettle A. J. , Kuhn U. , von Hobe M. , Kesselmeier J. , Andreae M. O . Global budget of atmospheric carbonyl sulfide: temporal and spatial variations of the dominant sources and sinks . J. Geophys. Res. Atmos . 2002 ; 107 ( D22 ): DOI: 10.1029/2002JD002187 ACH 25–1–CH 25–16 .
  26. Kuai L. , Worden J. , Kulawik S. S. , Montzka S. A. , Liu J . Characterization of Aura TES carbonyl sulfide retrievals over ocean . Atmos. Meas. Tech . 2014 ; 7 ( 1 ): 163 172 . DOI: 10.5194/amt-7-163-2014 .
  27. Kulkarni S. , Sobhani N. , Miller-Schulze J. P. , Shafer M. M. , Schauer J. J. , co-authors . Source sector and region contributions to BC and PM2.5 in Central Asia . Atmos. Chem. Phys . 2015 ; 15 ( 4 ): 1683 1705 . DOI: 10.5194/acp-15-1683-2015 .
  28. Liu J. , Price D. T. , Chen J. M . Nitrogen controls on ecosystem carbon sequestration: a model implementation and application to Saskatchewan, Canada . Ecol. Model . 2005 ; 186 ( 2 ): 178 195 . DOI: 10.1016/j.ecolmodel.2005.01.036 .
  29. Maseyk K. , Berry J. A. , Billesbach D. , Campbell J. E. , Torn M. S. , co-authors . Sources and sinks of carbonyl sulfide in an agricultural field in the Southern Great Plains . Proc. Natl. Acad. Sci. USA . 2014 ; 111 ( 25 ): 9064 9069 . DOI: 10.1073/pnas.131913 .
  30. Montzka S. A. , Calvert P. , Hall B. D. , Elkins J. W. , Conway T. J. , co-authors . On the global distribution, seasonality, and budget of atmospheric carbonyl sulfide (COS) and some similarities to CO2 . J. Geophys. Res. Atmos . 2007 ; 112 ( D09302 ): DOI: 10.1029/2006JD007665 .
  31. Sellers P. J. , Randall D. A. , Collatz G. J. , Berry J. A. , Field C. B. , co-authors . A revised land surface parameterization (SiB2) for atmospheric GCMS. Part I: model formulation . J. Clim . 1996 ; 9 : 676 705 .
  32. Stimler K. , Berry J. A. , Montzka S. A. , Yakir D . Association between carbonyl sulfide uptake and 18Δ during gas exchange in C3 and C4 leaves . Plant Physiol . 2011 ; 157 ( 1 ): 509 517 . DOI: 10.1104/pp.111.176578 .
  33. Stimler K. , Berry J. A. , Yakir D . Effects of carbonyl sulfide and carbonic anhydrase on stomatal conductance . Plant Physiol . 2012 ; 158 ( 1 ): 524 530 . DOI: 10.1104/pp.111.185926 .
  34. Stimler K. , Montzka S. A. , Berry J. A. , Rudich Y. , Yakir D . Relationships between carbonyl sulfide (COS) and CO2 during leaf gas exchange . New Phytolog . 2010 ; 186 ( 4 ): 869 878 . DOI: 10.1111/j.1469-8137.2010.03218.x .
  35. Suntharalingam P. , Kettle A. J. , Montzka S. M. , Jacob D. J . Global 3-D model analysis of the seasonal cycle of atmospheric carbonyl sulfide: implications for terrestrial vegetation uptake . Geophys. Res. Lett . 2008 ; 35 ( L19801 ): DOI: 10.1029/2008GL034332 .
  36. van der Werf G. R. , Randerson J. T. , Giglio L. , Collatz G. J. , Mu M. , co-authors . Global fire emissions and the contribution of deforestation, savanna, forest, agricultural, and peat fires (1997–2009) . Atmos. Chem. Phys . 2010 ; 10 ( 23 ): 11707 11735 . DOI: 10.5194/acp-10-11707-2010 .
  37. Welp L. R. , Keeling R. F. , Meijer H. A. J. , Bollenbacher A. F. , Piper S. C. , co-authors . Interannual variability in the oxygen isotopes of atmospheric CO2 driven by El Niño . Nature . 2011 ; 477 ( 7366 ): 579 582 . DOI: 10.1038/nature10421 .
  38. White M. L. , Zhou Y. , Russo R. S. , Mao H. , Talbot R. , co-authors . Carbonyl sulfide exchange in a temperate loblolly pine forest grown under ambient and elevated CO2 . Atmos. Chem. Phys . 2010 ; 10 ( 2 ): 547 561 . DOI: 10.5194/acp-10-547-2010 .
Language: English
Page range: 26329 - 26329
Submitted on: Oct 16, 2014
Accepted on: Jun 29, 2015
Published on: Jan 1, 2015
Published by: Stockholm University Press
In partnership with: Paradigm Publishing Services

© 2015 Timothy W. Hilton, Andrew Zumkehr, Sarika Kulkarni, Joe Berry, Mary E. Whelan, J. Elliott Campbell, published by Stockholm University Press
This work is licensed under the Creative Commons Attribution 4.0 License.