Adcroft, A., Anderson, W., Balaji, V., Blanton, C., Bushuk, M., Dufour, C.
O., Dunne, J. P., Griffies, S. M., Hallberg, R., Harrison, M. J., Held, I.
M., Jansen, M. F., John, J. G., Krasting, J. P., Langenhorst, A. R., Legg,
S., Liang, Z., McHugh, C., Radhakrishnan, A., Reichl, B. G., Rosati, T.,
Samuels, B. L., Shao, A., Stouffer, R., Winton, M., Wittenberg, A. T.,
Xiang, B., Zadeh, N., and Zhang, R.: The GFDL Global Ocean and Sea Ice Model
OM4.0: Model Description and Simulation Features, J. Adv. Model. Earth
Sy., 2019MS001726, https://doi.org/10.1029/2019MS001726, accepted, 2019.
Alton, P. B.: Retrieval of seasonal Rubisco-limited photosynthetic capacity
at global FLUXNET sites from hyperspectral satellite remote sensing: Impact
on carbon modelling, Agr. Forest Meteorol., 232, 74–88,
https://doi.org/10.1016/j.agrformet.2016.08.001, 2017.
Amante, C. and Eakins, B. W.: ETOPO1 1 Arc-Minute Global Relief Model:
Procedures, Data Sources and Analysis, NOAA Technical Memorandum NESDIS
NGDC-24, National Geophysical Data Center, NOAA, https://doi.org/10.7289/V5C8276M, 2009.
Andres, R. J., Boden, T. A., Bréon, F.-M., Ciais, P., Davis, S., Erickson, D., Gregg, J. S., Jacobson, A., Marland, G., Miller, J., Oda, T., Olivier, J. G. J., Raupach, M. R., Rayner, P., and Treanton, K.: A synthesis of carbon dioxide emissions from fossil-fuel combustion, Biogeosciences, 9, 1845–1871, https://doi.org/10.5194/bg-9-1845-2012, 2012.
Andres, R. J., Boden, T. A., and Higdon, D.: A new evaluation of the
uncertainty associated with CDIAC estimates of fossil fuel carbon dioxide
emission, Tellus Ser. B, 66, 23616, https://doi.org/10.3402/tellusb.v66.23616, 2014.
Andrew, R. M.: Global CO2 emissions from cement production, 1928–2017, Earth Syst. Sci. Data, 10, 2213–2239, https://doi.org/10.5194/essd-10-2213-2018, 2018.
Andrew, R. M.: Global CO2 emissions from cement production, 1928–2018, Earth Syst. Sci. Data, 11, 1675–1710, https://doi.org/10.5194/essd-11-1675-2019, 2019.
Andrew, R. M. and Peters, G. P.: A Multi-Region Input-Output Table Based on
the Global Trade Analysis Project Database (Gtap-Mrio), Econ. Syst. Res.,
25, 99–121, https://doi.org/10.1080/09535314.2012.761953, 2013.
Archer, D., Eby, M., Brovkin, V., Ridgwell, A., Cao, L., Mikolajewicz, U.,
Caldeira, K., Matsumoto, K., Munhoven, G., Montenegro, A., and Tokos, K.:
Atmospheric Lifetime of Fossil Fuel Carbon Dioxide, Annu. Rev. Earth Pl.
Sc., 37, 117–134, https://doi.org/10.1146/annurev.earth.031208.100206, 2009.
Arneth, A., Sitch, S., Pongratz, J., Stocker, B. D., Ciais, P., Poulter, B.,
Bayer, A. D., Bondeau, A., Calle, L., Chini, L. P., Gasser, T., Fader, M.,
Friedlingstein, P., Kato, E., Li, W., Lindeskog, M., Nabel, J. E. M. S.,
Pugh, T. A. M., Robertson, E., Viovy, N., Yue, C., and Zaehle, S.: Historical
carbon dioxide emissions caused by land-use changes are possibly larger than
assumed, Nat. Geosci., 10, 79–84, https://doi.org/10.1038/ngeo2882, 2017.
Arora, V. K., Boer, G. J., Christian, J. R., Curry, C. L., Denman, K. L.,
Zahariev, K., Flato, G. M., Scinocca, J. F., Merryfield, W. J., and Lee, W.
G.: The Effect of Terrestrial Photosynthesis Down Regulation on the
Twentieth-Century Carbon Budget Simulated with the CCCma Earth System Model,
J. Climate, 22, 6066–6088, https://doi.org/10.1175/2009jcli3037.1, 2009.
Aumont, O., Ethé, C., Tagliabue, A., Bopp, L., and Gehlen, M.: PISCES-v2: an ocean biogeochemical model for carbon and ecosystem studies, Geosci. Model Dev., 8, 2465–2513, https://doi.org/10.5194/gmd-8-2465-2015, 2015.
Avitabile, V., Herold, M., Heuvelink, G. B. M., Lewis, S. L., Phillips, O.
L., Asner, G. P., Armston, J., Ashton, P. S., Banin, L., Bayol, N., Berry,
N. J., Boeckx, P., de Jong, B. H. J., DeVries, B., Girardin, C. A. J.,
Kearsley, E., Lindsell, J. A., Lopez-Gonzalez, G., Lucas, R., Malhi, Y.,
Morel, A., Mitchard, E. T. A., Nagy, L., Qie, L., Quinones, M. J., Ryan, C.
M., Ferry, S. J. W., Sunderland, T., Laurin, G. V., Gatti, R. C., Valentini,
R., Verbeeck, H., Wijaya, A., and Willcock, S.: An integrated pan-tropical
biomass map using multiple reference datasets, Glob. Chang. Biol., 22,
1406–1420, https://doi.org/10.1111/gcb.13139, 2016.
Baccini, A., Walker, W., Carvalho, L., Farina, M., Sulla-Menashe, D., and
Houghton, R. A.: Tropical forests are a net carbon source based on
aboveground measurements of gain and loss, Science, 358,
230–234, https://doi.org/10.1126/science.aam5962, 2017.
Bakker, D. C. E., Pfeil, B., Landa, C. S., Metzl, N., O'Brien, K. M., Olsen, A., Smith, K., Cosca, C., Harasawa, S., Jones, S. D., Nakaoka, S., Nojiri, Y., Schuster, U., Steinhoff, T., Sweeney, C., Takahashi, T., Tilbrook, B., Wada, C., Wanninkhof, R., Alin, S. R., Balestrini, C. F., Barbero, L., Bates, N. R., Bianchi, A. A., Bonou, F., Boutin, J., Bozec, Y., Burger, E. F., Cai, W.-J., Castle, R. D., Chen, L., Chierici, M., Currie, K., Evans, W., Featherstone, C., Feely, R. A., Fransson, A., Goyet, C., Greenwood, N., Gregor, L., Hankin, S., Hardman-Mountford, N. J., Harlay, J., Hauck, J., Hoppema, M., Humphreys, M. P., Hunt, C. W., Huss, B., Ibánhez, J. S. P., Johannessen, T., Keeling, R., Kitidis, V., Körtzinger, A., Kozyr, A., Krasakopoulou, E., Kuwata, A., Landschützer, P., Lauvset, S. K., Lefèvre, N., Lo Monaco, C., Manke, A., Mathis, J. T., Merlivat, L., Millero, F. J., Monteiro, P. M. S., Munro, D. R., Murata, A., Newberger, T., Omar, A. M., Ono, T., Paterson, K., Pearce, D., Pierrot, D., Robbins, L. L., Saito, S., Salisbury, J., Schlitzer, R., Schneider, B., Schweitzer, R., Sieger, R., Skjelvan, I., Sullivan, K. F., Sutherland, S. C., Sutton, A. J., Tadokoro, K., Telszewski, M., Tuma, M., van Heuven, S. M. A. C., Vandemark, D., Ward, B., Watson, A. J., and Xu, S.: A multi-decade record of high-quality fCO2 data in version 3 of the Surface Ocean CO2 Atlas (SOCAT), Earth Syst. Sci. Data, 8, 383–413, https://doi.org/10.5194/essd-8-383-2016, 2016.
Ballantyne, A. P., Alden, C. B., Miller, J. B., Tans, P. P., and White, J. W.
C.: Increase in observed net carbon dioxide uptake by land and oceans during
the past 50 years, Nature, 488, 70–72, https://doi.org/10.1038/nature11299, 2012.
Ballantyne, A. P., Andres, R., Houghton, R., Stocker, B. D., Wanninkhof, R., Anderegg, W., Cooper, L. A., DeGrandpre, M., Tans, P. P., Miller, J. B., Alden, C., and White, J. W. C.: Audit of the global carbon budget: estimate errors and their impact on uptake uncertainty, Biogeosciences, 12, 2565–2584, https://doi.org/10.5194/bg-12-2565-2015, 2015.
Bauer, J. E., Cai, W.-J., Raymond, P. A., Bianchi, T. S., Hopkinson, C. S.,
and Regnier, P. A. G.: The changing carbon cycle of the coastal ocean,
Nature, 504, 61–70, https://doi.org/10.1038/nature12857, 2013.
Berthet, S., Séférian, R., Bricaud, C., Chevallier, M., Voldoire, A.,
and Ethé, C.: Evaluation of an Online Grid-Coarsening Algorithm in a
Global Eddy-Admitting Ocean Biogeochemical Model, J. Adv. Model. Earth
Sy., 11, 1759–1783, https://doi.org/10.1029/2019MS001644, 2019.
Best, M. J., Pryor, M., Clark, D. B., Rooney, G. G., Essery, R. L. H., Ménard, C. B., Edwards, J. M., Hendry, M. A., Porson, A., Gedney, N., Mercado, L. M., Sitch, S., Blyth, E., Boucher, O., Cox, P. M., Grimmond, C. S. B., and Harding, R. J.: The Joint UK Land Environment Simulator (JULES), model description – Part 1: Energy and water fluxes, Geosci. Model Dev., 4, 677–699, https://doi.org/10.5194/gmd-4-677-2011, 2011.
BP: BP Statistical Review of World Energy June 2019, available at:
https://www.bp.com/en/global/corporate/energy-economics/statistical-review-of-world-energy.html,
last access: June 2019.
Bruno, M. and Joos, F.: Terrestrial carbon storage during the past 200
years: A Monte Carlo Analysis of CO2 data from ice core and atmospheric
measurements, Global Biogeochem. Cy., 11, 111–124,
https://doi.org/10.1029/96GB03611, 1997.
Buitenhuis, E. T., Hashioka, T., and Le Quéré, C.: Combined
constraints on global ocean primary production using observations and
models, Global Biogeochem. Cy., 27, 847–858, https://doi.org/10.1002/gbc.20074,
2013.
Canadell, J. G., Le Quéré, C., Raupach, M. R., Field, C. B.,
Buitenhuis, E. T., Ciais, P., Conway, T. J., Gillett, N. P., Houghton, R. A.,
and Marland, G.: Contributions to accelerating atmospheric CO2 growth
from economic activity, carbon intensity, and efficiency of natural sinks,
P. Natl. Acad. Sci. USA, 104, 18866–18870, https://doi.org/10.1073/pnas.0702737104,
2007.
Carbontracker Team: Compilation of near real time atmospheric carbon dioxide
data provided by NOAA and EC; obspack_co2_1_NRT_v4.4.2_2019-06-10; NOAA
Earth System Research Laboratory, Global Monitoring Division,
https://doi.org/10.25925/20190610, 2019.
CEA: Central Electricity Authority (CEA): Daily Coal – Archive, Central
Electricity Authority, available at:
http://www.cea.nic.in/dailyarchive.html, last access: 3 November 2019a.
CEA: Generation Overview Report September 2019: Summary All India, available
at:
http://cea.nic.in/reports/monthly/generation/2019/September/actual/actual.html,
last access: 6 November 2019b.
CGADIP: Cooperative Global Atmospheric Data Integration Project:
Multi-laboratory compilation of atmospheric carbon dioxide data for the
period 1957–2017; obspack_co2_1_GLOBALVIEWplus_v4.2.2_2019-06-05, Earth System
Research Laboratory, Global Monitoring Division, 2019.
Chatfield, C.: The Holt-Winters Forecasting Procedure, Appl. Stat., 27,
264–279, https://doi.org/10.2307/2347162, 1978.
Chevallier, F., Fisher, M., Peylin, P., Serrar, S., Bousquet, P., Bréon,
F.-M., Chédin, A., and Ciais, P.: Inferring CO2 sources and sinks from
satellite observations: Method and application to TOVS data, J. Geophys.
Res., 110, D24309, https://doi.org/10.1029/2005JD006390, 2005.
Ciais, P., Sabine, C., Govindasamy, B., Bopp, L., Brovkin, V., Canadell, J.,
Chhabra, A., DeFries, R., Galloway, J., Heimann, M., Jones, C., Le
Quéré, C., Myneni, R., Piao, S., and Thornton, P.: Chapter 6: Carbon
and Other Biogeochemical Cycles, in: Climate Change 2013 The Physical Science
Basis, edited by: Stocker, T., Qin, D., and Platner, G.-K., Cambridge University
Press, Cambridge, 2013.
CIL: Coal India Limited: Production and Offtake Performance of CIL and
Subsidiary Companies, available at:
https://www.coalindia.in/en-us/performance/physical.aspx, last access: 1
November 2019.
Clark, D. B., Mercado, L. M., Sitch, S., Jones, C. D., Gedney, N., Best, M. J., Pryor, M., Rooney, G. G., Essery, R. L. H., Blyth, E., Boucher, O., Harding, R. J., Huntingford, C., and Cox, P. M.: The Joint UK Land Environment Simulator (JULES), model description – Part 2: Carbon fluxes and vegetation dynamics, Geosci. Model Dev., 4, 701–722, https://doi.org/10.5194/gmd-4-701-2011, 2011.
Collier, N., Hoffman, F. M., Lawrence, D. M., Keppel-Aleks, G., Koven, C.
D., Riley, W. J., Mu, M. Q., and Randerson, J. T.: The International Land
Model Benchmarking (ILAMB) System: Design, Theory, and Implementation, J.
Adv. Model. Earth Sy., 10, 2731–2754, https://doi.org/10.1029/2018ms001354, 2018.
Cox, P. M., Pearson, D., Booth, B. B., Friedlingstein, P., Huntingford, C.,
Jones, C. D., and Luke, C. M.: Sensitivity of tropical carbon to climate
change constrained by carbon dioxide variability, Nature, 494,
341–344, https://doi.org/10.1038/nature11882, 2013.
Dai, A. and Trenberth, K. E.: Estimates of Freshwater Discharge from
Continents: Latitudinal and Seasonal Variations, J. Hydrometeorol., 3,
660–687, https://doi.org/10.1175/1525-7541(2002)003<0660:EOFDFC>2.0.CO;2, 2002.
Davis, S. J. and Caldeira, K.: Consumption-based accounting of CO2
emissions, P. Natl. Acad. Sci. USA, 107, 5687–5692,
https://doi.org/10.1073/pnas.0906974107, 2010.
Decharme, B., Delire, C., Minvielle, M., Colin, J., Vergnes, J., Alias, A.,
Saint-Martin, D., Séférian, R., Sénési, S., and Voldoire, A.:
Recent Changes in the ISBA-CTRIP Land Surface System for Use in the CNRM-CM6
Climate Model and in Global Off-Line Hydrological Applications, J. Adv.
Model. Earth Sy., 11, 1207–1252, https://doi.org/10.1029/2018MS001545, 2019.
De Kauwe, M. G., Disney, M. I., Quaife, T., Lewis, P., and Williams, M.: An
assessment of the MODIS collection 5 leaf area index product for a region of
mixed coniferous forest, Remote Sens. Environ., 115, 767–780,
https://doi.org/10.1016/j.rse.2010.11.004, 2011.
Delire, C., Séférian, R., Decharme, B., Alkama, R., Carrer, D.,
Joetzjer, E., Morel, X., and Rocher, M.: The global land carbon cycle
simulated with ISBA, J. Adv. Model. Earth Sy., in review, 2019.
Denman, K. L., Brasseur, G., Chidthaisong, A., Ciais, P., Cox, P. M.,
Dickinson, R. E., Hauglustaine, D., Heinze, C., Holland, E., Jacob, D.,
Lohmann, U., Ramachandran, S., Leite da Silva Dias, P., Wofsy, S. C., and
Zhang, X.: Couplings Between Changes in the Climate System and
Biogeochemistry, in Climate Change 2007: The Physical Science Basis.
Contribution of Working Group I to the Fourth Assessment Report of the
Intergovernmental Panel on Climate Change, edited by: Solomon, S., Qin, D.,
Manning, M., Marquis, M., Averyt, K., Tignor, M. M. B., Miller, H. L., and Chen,
Z. L., Cambridge University Press, Cambridge, UK and New York,
USA, 499–587, 2007.
Denvil-Sommer, A., Gehlen, M., Vrac, M., and Mejia, C.: LSCE-FFNN-v1: a two-step neural network model for the reconstruction of surface ocean pCO2 over the global ocean, Geosci. Model Dev., 12, 2091–2105, https://doi.org/10.5194/gmd-12-2091-2019, 2019.
DeVries, T.: The oceanic anthropogenic CO2 sink: Storage, air-sea
fluxes, and transports over the industrial era, Global Biogeochem. Cy.,
28, 631–647, https://doi.org/10.1002/2013gb004739, 2014.
DeVries, T., Holzer, M., and Primeau, F.: Recent increase in oceanic carbon
uptake driven by weaker upper-ocean overturning, Nature, 542,
215–218, https://doi.org/10.1038/nature21068, 2017.
DeVries, T., Le Quéré, C., Andrews, O., Berthet, S., Hauck, J., Ilyina, T.,
Landschützer, P., Lenton, A., Lima, I. D., Nowicki, M., Schwinger, J. and Séférian, R.:
Decadal trends in the ocean carbon sink, P. Natl. Acad. Sci. USA, 116, 11646–11651,
https://doi.org/10.1073/pnas.1900371116, 2019.
Dlugokencky, E. and Tans, P.: Trends in atmospheric carbon dioxide, National
Oceanic & Atmospheric Administration, Earth System Research Laboratory
(NOAA/ESRL), available at:
http://www.esrl.noaa.gov/gmd/ccgg/trends/global.html, last access: 3
November 2019.
Doney, S. C., Lima, I., Feely, R. A., Glover, D. M., Lindsay, K., Mahowald,
N., Moore, J. K., and Wanninkhof, R.: Mechanisms governing interannual
variability in upper-ocean inorganic carbon system and air-sea CO2
fluxes: Physical climate and atmospheric dust, Deep.-Sea Res. Pt. II, 56, 640–655, https://doi.org/10.1016/j.dsr2.2008.12.006, 2009.
Duce, R. A., LaRoche, J., Altieri, K., Arrigo, K. R., Baker, A. R., Capone,
D. G., Cornell, S., Dentener, F., Galloway, J., Ganeshram, R. S., Geider, R.
J., Jickells, T., Kuypers, M. M., Langlois, R., Liss, P. S., Liu, S. M.,
Middelburg, J. J., Moore, C. M., Nickovic, S., Oschlies, A., Pedersen, T.,
Prospero, J., Schlitzer, R., Seitzinger, S., Sorensen, L. L., Uematsu, M.,
Ulloa, O., Voss, M., Ward, B., and Zamora, L.: Impacts of Atmospheric
Anthropogenic Nitrogen on the Open Ocean, Science, 320,
893–897, https://doi.org/10.1126/science.1150369, 2008.
Dufour, C. O., Le Sommer, J., Gehlen, M., Orr, J. C., Molines, J. M.,
Simeon, J., and Barnier, B.: Eddy compensation and controls of the enhanced
sea-to-air CO2 flux during positive phases of the Southern Annular
Mode, Global Biogeochem. Cy., 27, 950–961, https://doi.org/10.1002/gbc.20090,
2013.
Durant, A. J., Le Quéré, C., Hope, C., and Friend, A. D.: Economic
value of improved quantification in global sources and sinks of carbon
dioxide, Philos. T. R. Soc. A, 369, 1967–1979,
https://doi.org/10.1098/rsta.2011.0002, 2011.
Eakins, B. W. and Sharman, G. F.: Volumes of the World's Oceans from ETOPO1;
NOAA National Geophysical Data Center, available at:
http://www.ngdc.noaa.gov/mgg/global/etopo1_ocean_volumes.html (last access: 27 September 2019), 2010.
EIA: U.S. Energy Information Administration, Short-Term Energy Outlook,
available at: http://www.eia.gov/forecasts/steo/outlook.cfm, last access: 27
September 2019.
ENTSO-E: The European Network of Transmission System Operators Electricity
Transparency Platform, available at: https://transparency.entsoe.eu/, last
access: 3 November 2019.
Erb, K. H., Kastner, T., Luyssaert, S., Houghton, R. A., Kuemmerle, T.,
Olofsson, P., and Haberl, H.: COMMENTARY: Bias in the attribution of forest
carbon sinks, Nat. Clim. Change, 3, 854–856, https://doi.org/10.1038/nclimate2004,
2013.
Etheridge, D. M., Steele, L. P., Langenfelds, R. L., Francey, R. J.,
Barnola, J. M., and Morgan, V. I.: Natural and anthropogenic changes in
atmospheric CO2 over the last 1000 years from air in Antarctic ice and
firn, J. Geophys. Res., 101, 4115–4128, https://doi.org/10.1029/95jd03410,
1996.
Eurostat: Supply and transformation of solid fuels – monthly data
(nrg_101m), available at:
https://ec.europa.eu/eurostat/data/database, last access: 5 November
2019.
FAO: Food and Agriculture Organization of the United Nations: Global Forest
Resources Assessment 2015, available at:
http://www.fao.org/forest-resources-assessment/past-assessments/fra-2015/en/
(last access: 27 September 2019), Rome, Italy, 2015.
FAOSTAT: Food and Agriculture Organization Statistics Division, available
at: http://faostat.fao.org/ (last access: 27 September 2019), 2015.
Francey, R. J., Trudinger, C. M., van der Schoot, M., Law, R. M., Krummel,
P. B., Langenfelds, R. L., Steele, L. P., Allison, C. E., Stavert, A. R.,
Andres, R. J., and Rödenbeck, C.: Reply to “Anthropogenic CO2
emissions”, Nat. Clim. Change, 3, 604, https://doi.org/10.1038/nclimate1925, 2013.
Friedlingstein, P., Houghton, R. A., Marland, G., Hackler, J., Boden, T. A.,
Conway, T. J., Canadell, J. G., Raupach, M. R., Ciais, P., and Le
Quéré, C.: Update on CO2 emissions, Nat. Geosci., 3,
811–812, https://doi.org/10.1038/ngeo1022, 2010.
Friedlingstein, P., Andrew, R. M., Rogelj, J., Peters, G. P., Canadell, J.
G., Knutti, R., Luderer, G., Raupach, M. R., Schaeffer, M., van Vuuren, D.
P., and Le Quéré, C.: Persistent growth of CO2 emissions and
implications for reaching climate targets, Nat. Geosci., 7, 709–715,
https://doi.org/10.1038/Ngeo2248, 2014.
Friedlingstein, P., Jones, M. W., O'Sullivan, M., Andrew, R. M., Hauck, J.,
Peters, G. P., Peters, W., Pongratz, J., Sitch, S., Le Quéré, C.,
Bakker, D. C. E., Canadell, J. G., Ciais, P., Jackson, R., Anthoni, P.,
Barbero, L., Bastos, A., Bastrikov, V., Becker, M., Bopp, L., Buitenhuis,
E., Chandra, N., Chevallier, F., Chini, L. P., Currie, K. I., Feely, R. A.,
Gehlen, M., Gilfillan, D., Gkritzalis, T., Goll, D. S., Gruber, N.,
Gutekunst, S., Harris, I., Haverd, V., Houghton, R. A., Hurtt, G., Ilyina,
T., Jain, A. K., Joetzjer, E., Kaplan, J. O., Kato, E., Goldewijk, K. K.,
Korsbakken, J. I., Landschützer, P., Lauvset, S. K., Lefèvre, N.,
Lenton, A., Lienert, S., Lombardozzi, D., Marland, G., McGuire, P. C.,
Melton, J. R., Metzl, N., Munro, D. R., Nabel, J. E. M. S., Nakaoka, S.-I.,
Neill, C., Omar, A. M., Ono, T., Peregon, A., Pierrot, D., Poulter, B.,
Rehder, G., Resplandy, L., Robertson, E., Rödenbeck, C.,
Séférian, R., Schwinger, J., Smith, N., Tans, P. P., Tian, H.,
Tilbrook, B., Tubiello, F. N., van der Werf, G. R., Wiltshire, A. J., and
Zaehle, S.: Supplemental data of the Global Carbon Budget 2019: ICOS-ERIC Carbon Portal, https://doi.org/10.18160/gcp-2019, 2019.
Gasser, T., Ciais, P., Boucher, O., Quilcaille, Y., Tortora, M., Bopp, L., and Hauglustaine, D.: The compact Earth system model OSCAR v2.2: description and first results, Geosci. Model Dev., 10, 271–319, https://doi.org/10.5194/gmd-10-271-2017, 2017.
Gaubert, B., Stephens, B. B., Basu, S., Chevallier, F., Deng, F., Kort, E. A., Patra, P. K., Peters, W., Rödenbeck, C., Saeki, T., Schimel, D., Van der Laan-Luijkx, I., Wofsy, S., and Yin, Y.: Global atmospheric CO2 inverse models converging on neutral tropical land exchange, but disagreeing on fossil fuel and atmospheric growth rate, Biogeosciences, 16, 117–134, https://doi.org/10.5194/bg-16-117-2019, 2019.
GCP: The Global Carbon Budget 2007, available at:
http://www.globalcarbonproject.org/carbonbudget/archive.htm (last access: 7
November 2016), 2007.
General Administration of Customs of the People's Republic of China: Monthly
statistics reports, available at:
http://www.customs.gov.cn/customs/302249/302274/302277/index.html, last
access: 1 November 2019.
Giglio, L., Schroeder, W., and Justice, C. O.: The collection 6 MODIS active
fire detection algorithm and fire products, Remote Sens. Environ., 178,
31–41, https://doi.org/10.1016/j.rse.2016.02.054, 2016.
Gilfillan, D., Marland, G., Boden, T., and Andres, R.: Global, Regional, and
National Fossil-Fuel CO2 Emissions, available at:
https://energy.appstate.edu/CDIAC, last access: 27 September 2019.
Gitz, V. and Ciais, P.: Amplifying effects of land-use change on future
atmospheric CO2 levels, Global Biogeochem. Cy., 17, 1024,
https://doi.org/10.1029/2002GB001963, 2003.
Goldewijk, K. K., Dekker, S. C., and van Zanden, J. L.: Per-capita
estimations of long-term historical land use and the consequences for global
change research, J. Land Use Sci., 12, 313–337,
https://doi.org/10.1080/1747423x.2017.1354938, 2017.
Goll, D. S., Winkler, A. J., Raddatz, T., Dong, N., Prentice, I. C., Ciais, P., and Brovkin, V.: Carbon–nitrogen interactions in idealized simulations with JSBACH (version 3.10), Geosci. Model Dev., 10, 2009–2030, https://doi.org/10.5194/gmd-10-2009-2017, 2017.
Goll, D. S., Joetzjer, E., Huang, M., and Ciais, P.: Low Phosphorus
Availability Decreases Susceptibility of Tropical Primary Productivity to
Droughts, Geophys. Res. Lett., 45, 8231–8240, https://doi.org/10.1029/2018GL077736,
2018.
Gray, A. R., Johnson, K. S., Bushinsky, S. M., Riser, S. C., Russell, J. L.,
Talley, L. D., Wanninkhof, R., Williams, N. L., and Sarmiento, J. L.:
Autonomous Biogeochemical Floats Detect Significant Carbon Dioxide
Outgassing in the High-Latitude Southern Ocean, Geophys. Res. Lett., 45,
9049–9057, https://doi.org/10.1029/2018GL078013, 2018.
Gregg, J. S., Andres, R. J. and Marland, G.: China: Emissions pattern of the
world leader in CO2 emissions from fossil fuel consumption and cement
production, Geophys. Res. Lett., 35, L08806, https://doi.org/10.1029/2007gl032887, 2008.
Gruber, N., Clement, D., Carter, B. R., Feely, R. A., van Heuven, S.,
Hoppema, M., Ishii, M., Key, R. M., Kozyr, A., Lauvset, S. K., Lo Monaco,
C., Mathis, J. T., Murata, A., Olsen, A., Perez, F. F., Sabine, C. L.,
Tanhua, T., and Wanninkhof, R.: The oceanic sink for anthropogenic CO2 from
1994 to 2007, Science, 363, 1193–1199,
https://doi.org/10.1126/science.aau5153, 2019.
Hansen, M. C., Potapov, P. V., Moore, R., Hancher, M., Turubanova, S. A.,
Tyukavina, A., Thau, D., Stehman, S. V., Goetz, S. J., Loveland, T. R., Kommareddy, A.,
Egorov, A., Chini, L., Justice, C. O., and Townshend, J. R. G.: High-Resolution Global Maps
of 21st-Century Forest Cover Change, Science, 342, 850–853,
https://doi.org/10.1126/science.1244693, 2013.
Hansis, E., Davis, S. J., and Pongratz, J.: Relevance of methodological
choices for accounting of land use change carbon fluxes, Global Biogeochem.
Cy., 29, 1230–1246, https://doi.org/10.1002/2014GB004997, 2015.
Hauck, J., Lenton, A., Langlais, C., and Matear, R.: The Fate of Carbon and
Nutrients Exported Out of the Southern Ocean, Global Biogeochem. Cy., 32, 1556–1573, https://doi.org/10.1029/2018GB005977, 2018.
Harris, I., Jones, P. D., Osborn, T. J., and Lister, D. H.: Updated
high-resolution grids of monthly climatic observations – the CRU TS3.10
Dataset, Int. J. Climatol., 34, 623–642, https://doi.org/10.1002/joc.3711, 2014.
Haverd, V., Smith, B., Nieradzik, L., Briggs, P. R., Woodgate, W., Trudinger, C. M., Canadell, J. G., and Cuntz, M.: A new version of the CABLE land surface model (Subversion revision r4601) incorporating land use and land cover change, woody vegetation demography, and a novel optimisation-based approach to plant coordination of photosynthesis, Geosci. Model Dev., 11, 2995–3026, https://doi.org/10.5194/gmd-11-2995-2018, 2018.
Hertwich, E. G. and Peters, G. P.: Carbon footprint of nations: a global,
trade-linked analysis, Environ. Sci Technol., 43, 6414–6420,
https://doi.org/10.1021/es803496a, 2009.
Hooijer, A., Page, S., Canadell, J. G., Silvius, M., Kwadijk, J., Wösten, H., and Jauhiainen, J.: Current and future CO2 emissions from drained peatlands in Southeast Asia, Biogeosciences, 7, 1505–1514, https://doi.org/10.5194/bg-7-1505-2010, 2010.
Houghton, R. A.: Revised estimates of the annual net flux of carbon to the
atmosphere from changes in land use and land management 1850–2000, Tellus
Ser. B, 55, 378–390, https://doi.org/10.1034/j.1600-0889.2003.01450.x, 2003.
Houghton, R. A. and Nassikas, A. A.: Global and regional fluxes of carbon
from land use and land cover change 1850–2015, Global Biogeochem. Cy.,
31, 456–472, https://doi.org/10.1002/2016gb005546, 2017.
Houghton, R. A., House, J. I., Pongratz, J., van der Werf, G. R., DeFries, R. S., Hansen, M. C., Le Quéré, C., and Ramankutty, N.: Carbon emissions from land use and land-cover change, Biogeosciences, 9, 5125–5142, https://doi.org/10.5194/bg-9-5125-2012, 2012.
Houweling, S., Baker, D., Basu, S., Boesch, H., Butz, A., Chevallier, F.,
Deng, F., Dlugokencky, E. J., Feng, L., Ganshin, A., Hasekamp, O., Jones,
D., Maksyutov, S., Marshall, J., Oda, T., O'Dell, C. W., Oshchepkov, S.,
Palmer, P. I., Peylin, P., Poussi, Z., Reum, F., Takagi, H., Yoshida, Y., and
Zhuravlev, R.: An intercomparison of inverse models for estimating sources
and sinks of CO2 using GOSAT measurements, J. Geophys. Res., 120,
5253–5266, https://doi.org/10.1002/2014jd022962, 2015.
Hugelius, G., Bockheim, J. G., Camill, P., Elberling, B., Grosse, G., Harden, J. W., Johnson, K., Jorgenson, T., Koven, C. D., Kuhry, P., Michaelson, G., Mishra, U., Palmtag, J., Ping, C.-L., O'Donnell, J., Schirrmeister, L., Schuur, E. A. G., Sheng, Y., Smith, L. C., Strauss, J., and Yu, Z.: A new data set for estimating organic carbon storage to 3 m depth in soils of the northern circumpolar permafrost region, Earth Syst. Sci. Data, 5, 393–402, https://doi.org/10.5194/essd-5-393-2013, 2013.
Huntzinger, D. N., Michalak, A. M., Schwalm, C., Ciais, P., King, A. W.,
Fang, Y., Schaefer, K., Wei, Y., Cook, R. B., Fisher, J. B., Hayes, D.,
Huang, M., Ito, A., Jain, A. K., Lei, H., Lu, C., Maignan, F., Mao, J.,
Parazoo, N., Peng, S., Poulter, B., Ricciuto, D., Shi, X., Tian, H., Wang,
W., Zeng, N., and Zhao, F.: Uncertainty in the response of terrestrial carbon
sink to environmental drivers undermines carbon-climate feedback
predictions, Sci. Rep., 7, 4765, https://doi.org/10.1038/s41598-017-03818-2, 2017.
Hurtt, G., Chini, L., Sahajpal, R., Frolking, S., Calvin, K., Fujimori, S.,
Klein Goldewijk, K., Hasegawa, T., Havlik, P., and Heinemann, A.:
Harmonization of global land-use change and management for the period
850–2100, Geosci. Model Dev. Discuss., in preparation, 2019.
Hurtt, G. C., Chini, L. P., Frolking, S., Betts, R. A., Feddema, J.,
Fischer, G., Fisk, J. P., Hibbard, K., Houghton, R. A., Janetos, A., Jones,
C. D., Kindermann, G., Kinoshita, T., Goldewijk, K. K., Riahi, K.,
Shevliakova, E., Smith, S., Stehfest, E., Thomson, A., Thornton, P., van
Vuuren, D. P., and Wang, Y. P.: Harmonization of land-use scenarios for the
period 1500–2100: 600 years of global gridded annual land-use transitions,
wood harvest, and resulting secondary lands, Climate Change, 109,
117–161, https://doi.org/10.1007/s10584-011-0153-2, 2011.
IEA: World Energy Statistics: 2018 Edition, available at: http://www.iea.org (last access: 28 November 2019),
2018.
IEA/OECD: International Energy Agency/Organisation for Economic Cooperation
and Development: CO2 emissions from fuel combustion, available at:
https://webstore.iea.org/co2-emissions-from-fuel-combustion-2018-highlights (last access: 28 November 2019),
Paris, 2018.
IMD: India Meteorological Department, Ministry of Earth Sciences (IMD): 2019
Southwest Monsoon Season Rainfall and IMD's Long Range Forecasts, available
at: http://www.imd.gov.in/pages/press_release.php, last
access: 6 November 2019.
IMF: World Economic Outlook Update, July 2019: Still Sluggish Global
Growth, available at: http://www.imf.org, last access: 16 October
2019a.
IMF: World Economic Outlook: Global Manufacturing Downturn, Rising Trade
Barriers. International Monetary Fund, available at: http://www.imf.org, last
access: 30 October 2019b.
IPCC: 2006 IPCC Guidelines for National Greenhouse Gas Inventories, Prepared
by the National Greenhouse Gas Inventories Programme, edited by:
Eggleston, S., Buendia, L., Miwa, K., Ngara, T., and Tanabe, K., Intergovernmental
Panel on Climate Change, Institute for Global Environmental Strategies,
Japan, 2006.
Ito, A. and Inatomi, M.: Use of a process-based model for assessing the methane budgets of global terrestrial ecosystems and evaluation of uncertainty, Biogeosciences, 9, 759–773, https://doi.org/10.5194/bg-9-759-2012, 2012.
Jackson, R. B., Canadell, J. G., Le Quéré, C., Andrew, R. M.,
Korsbakken, J. I., Peters, G. P., and Nakicenovic, N.: Reaching peak
emissions, Nat. Clim. Change, 6, 7–10, https://doi.org/10.1038/nclimate2892, 2016.
Jackson, R. B., Le Quéré, C., Andrew, R. M., Canadell, J. G.,
Korsbakken, J. I., Liu, Z., Peters, G. P., and Zheng, B.: Global energy
growth is outpacing decarbonization, Environ. Res. Lett., 13, 120401,
https://doi.org/10.1088/1748-9326/aaf303, 2018.
Jacobson, A. R., Mikaloff Fletcher, S. E., Gruber, N., Sarmiento, J. L. and
Gloor, M.: A joint atmosphere-ocean inversion for surface fluxes of carbon dioxide: 2.
Regional results, Global Biogeochem. Cy., 21, GB1020, https://doi.org/10.1029/2006GB002703,
2007.
JODI: Joint Organisations Data Initiative, available at:
https://www.jodidata.org, last access: 3 November 2019.
Joetzjer, E., Delire, C., Douville, H., Ciais, P., Decharme, B., Carrer, D., Verbeeck, H., De Weirdt, M., and Bonal, D.: Improving the ISBACC land surface model simulation of water and carbon fluxes and stocks over the Amazon forest, Geosci. Model Dev., 8, 1709–1727, https://doi.org/10.5194/gmd-8-1709-2015, 2015.
Jones, M. W., Le Quéré, C., Andrew, R., Peters, G., Chevallier, F.,
Ciais, P., Janssens-Maenhout, G., van der Laan-Luijkx, I., Patra, P. Peters,
W., and Rödenbeck, C.: Gridded fossil CO2 emissions and related
O2 combustion consistent with national inventories 1959–2018, in
preparation, 2019.
Joos, F. and Spahni, R.: Rates of change in natural and anthropogenic
radiative forcing over the past 20,000 years, P. Natl. Acad. Sci. USA, 105, 1425–1430,
https://doi.org/10.1073/pnas.0707386105, 2008.
Jung, M., Reichstein, M., Ciais, P., Seneviratne, S. I., Sheffield, J.,
Goulden, M. L., Bonan, G., Cescatti, A., Chen, J., de Jeu, R., Dolman, A.
J., Eugster, W., Gerten, D., Gianelle, D., Gobron, N., Heinke, J., Kimball,
J., Law, B. E., Montagnani, L., Mu, Q., Mueller, B., Oleson, K., Papale, D.,
Richardson, A. D., Roupsard, O., Running, S., Tomelleri, E., Viovy, N.,
Weber, U., Williams, C., Wood, E., Zaehle, S., and Zhang, K.: Recent decline
in the global land evapotranspiration trend due to limited moisture supply,
Nature, 467, 951–954, https://doi.org/10.1038/nature09396, 2010.
Kato, E., Kinoshita, T., Ito, A., Kawamiya, M., and Yamagata, Y.: Evaluation
of spatially explicit emission scenario of land-use change and biomass
burning using a process-based biogeochemical model, J. Land Use Sci., 8,
104–122, https://doi.org/10.1080/1747423x.2011.628705, 2013.
Keeling, C. D., Bacastow, R. B., Bainbridge, A. E., Ekdahl, C. A., Guenther,
P. R., Waterman, L. S., and Chin, J. F. S.: Atmospheric Carbon-Dioxide
Variations at Mauna-Loa Observatory, Hawaii, Tellus, 28, 538–551,
https://doi.org/10.1111/j.2153-3490.1976.tb00701.x, 1976.
Keeling, R. F. and Manning, A. C.: Studies of Recent Changes in Atmospheric
O2 Content, in Treatise on Geochemistry, vol. 5, edited by: Holland, H. D. and
Turekian, K. K., Elsevier, Oxford, 385–404, 2014.
Khatiwala, S., Primeau, F., and Hall, T.: Reconstruction of the history of
anthropogenic CO2 concentrations in the ocean, Nature, 462,
346–U110, https://doi.org/10.1038/nature08526, 2009.
Khatiwala, S., Tanhua, T., Mikaloff Fletcher, S., Gerber, M., Doney, S. C., Graven, H. D., Gruber, N., McKinley, G. A., Murata, A., Ríos, A. F., and Sabine, C. L.: Global ocean storage of anthropogenic carbon, Biogeosciences, 10, 2169–2191, https://doi.org/10.5194/bg-10-2169-2013, 2013.
Kirschke, S., Bousquet, P., Ciais, P., Saunois, M., Canadell, J. G.,
Dlugokencky, E. J., Bergamaschi, P., Bergmann, D., Blake, D. R., Bruhwiler,
L., Cameron-Smith, P., Castaldi, S., Chevallier, F., Feng, L., Fraser, A.,
Heimann, M., Hodson, E. L., Houweling, S., Josse, B., Fraser, P. J.,
Krummel, P. B., Lamarque, J. F., Langenfelds, R. L., Le Quéré, C.,
Naik, V., O'Doherty, S., Palmer, P. I., Pison, I., Plummer, D., Poulter, B.,
Prinn, R. G., Rigby, M., Ringeval, B., Santini, M., Schmidt, M., Shindell,
D. T., Simpson, I. J., Spahni, R., Steele, L. P., Strode, S. A., Sudo, K.,
Szopa, S., van der Werf, G. R., Voulgarakis, A., van Weele, M., Weiss, R.
F., Williams, J. E., and Zeng, G.: Three decades of global methane sources
and sinks, Nat. Geosci., 6, 813–823, https://doi.org/10.1038/Ngeo1955, 2013.
Klein Goldewijk, K., Beusen, A., Doelman, J., and Stehfest, E.: Anthropogenic land use estimates for the Holocene – HYDE 3.2, Earth Syst. Sci. Data, 9, 927–953, https://doi.org/10.5194/essd-9-927-2017, 2017.
Kobayashi, S., Ota, Y., Harada, Y., Ebita, A., Moriya, M., Onoda, H., Onogi,
K., Kamahori, H., Kobayashi, C., Endo, H., Miyaoka, K., and Takahashi, K.:
The JRA-55 Reanalysis: General Specifications and Basic Characteristics, J.
Meteorol. Soc. Jpn., 93, 5–48, https://doi.org/10.2151/jmsj.2015-001, 2015.
Korsbakken, J. I., Peters, G. P., and Andrew, R. M.: Uncertainties around
reductions in China's coal use and CO2 emissions, Nat. Clim. Change, 6,
687–690, https://doi.org/10.1038/nclimate2963, 2016.
Krinner, G., Viovy, N., de Noblet-Ducoudré, N., Ogée, J., Polcher,
J., Friedlingstein, P., Ciais, P., Sitch, S., and Prentice, I. C.: A dynamic
global vegetation model for studies of the coupled atmosphere-biosphere
system, Global Biogeochem. Cy., 19, 1–33, https://doi.org/10.1029/2003GB002199,
2005.
Landschützer, P., Gruber, N., Bakker, D. C. E., and Schuster, U.: Recent
variability of the global ocean carbon sink, Global Biogeochem. Cy.,
28, 927–949, https://doi.org/10.1002/2014GB004853, 2014.
Landschützer, P., Gruber, N., Haumann, F. A., Rödenbeck, C., Bakker,
D. C. E., van Heuven, S., Hoppema, M., Metzl, N., Sweeney, C., Takahashi,
T., Tilbrook, B., and Wanninkhof, R.: The reinvigoration of the Southern
Ocean carbon sink, Science, 349, 1221–1224,
https://doi.org/10.1126/science.aab2620, 2015.
Landschützer, P., Gruber, N., and Bakker, D. C. E.: Decadal variations
and trends of the global ocean carbon sink, Global Biogeochem. Cy.,
30, 1396–1417, https://doi.org/10.1002/2015gb005359, 2016.
Landschützer, P., Gruber, N., Bakker, D. C. E., Stemmler, I., and Six, K.
D.: Strengthening seasonal marine CO2 variations due to increasing
atmospheric CO2, Nat. Clim. Change, 8, 146–150,
https://doi.org/10.1038/s41558-017-0057-x, 2018.
Lasslop, G., Reichstein, M., Papale, D., Richardson, A. D., Arneth, A.,
Barr, A., Stoy, P., and Wohlfahrt, G.: Separation of net ecosystem exchange
into assimilation and respiration using a light response curve approach:
critical issues and global evaluation, Glob. Change Biol., 16, 187–208,
https://doi.org/10.1111/j.1365-2486.2009.02041.x, 2010.
Law, R. M., Ziehn, T., Matear, R. J., Lenton, A., Chamberlain, M. A., Stevens, L. E., Wang, Y.-P., Srbinovsky, J., Bi, D., Yan, H., and Vohralik, P. F.: The carbon cycle in the Australian Community Climate and Earth System Simulator (ACCESS-ESM1) – Part 1: Model description and pre-industrial simulation, Geosci. Model Dev., 10, 2567–2590, https://doi.org/10.5194/gmd-10-2567-2017, 2017.
Lawrence, D. M., Fisher,
R. A., Koven, C. D., Oleson, K. W., Swenson, S. C., Bonan, G., Collier, N., Ghimire, B.,
Kampenhout, L., Kennedy, D., Kluzek, E., Lawrence, P. J., Li, F., Li, H., Lombardozzi, D.,
Riley, W. J., Sacks, W. J., Shi, M., Vertenstein, M., Wieder, W. R., Xu, C., Ali, A. A.,
Badger, A. M., Bisht, G., Broeke, M., Brunke, M. A., Burns, S. P., Buzan, J., Clark, M.,
Craig, A., Dahlin, K., Drewniak, B., Fisher, J. B., Flanner, M., Fox, A. M., Gentine, P.,
Hoffman, F., Keppel-Aleks, G., Knox, R., Kumar, S., Lenaerts, J., Leung, L. R., Lipscomb,
W. H., Lu, Y., Pandey, A., Pelletier, J. D., Perket, J., Randerson, J. T., Ricciuto, D. M.,
Sanderson, B. M., Slater, A., Subin, Z. M., Tang, J., Thomas, R. Q., Val Martin, M., and
Zeng, X.: The Community Land Model version 5: Description of new features,
benchmarking, and impact of forcing uncertainty, J. Adv. Model. Earth Sy.,
2018MS001583, https://doi.org/10.1029/2018MS001583, accepted, 2019.
Lee, T. J. and Pielke, R. A.: Estimating the Soil Surface Specific Humidity,
J. Appl. Meteorol., 31, 480–484, https://doi.org/10.1175/1520-0450(1992)031<0480:ETSSSH>2.0.CO;2, 1992.
Le Quéré, C., Raupach, M. R., Canadell, J. G., Marland, G., Bopp,
L., Ciais, P., Conway, T. J., Doney, S. C., Feely, R. A., Foster, P.,
Friedlingstein, P., Gurney, K., Houghton, R. A., House, J. I., Huntingford,
C., Levy, P. E., Lomas, M. R., Majkut, J., Metzl, N., Ometto, J. P., Peters,
G. P., Prentice, I. C., Randerson, J. T., Running, S. W., Sarmiento, J. L.,
Schuster, U., Sitch, S., Takahashi, T., Viovy, N., Van Der Werf, G. R., and
Woodward, F. I.: Trends in the sources and sinks of carbon dioxide, Nat.
Geosci., 2, 831–836, https://doi.org/10.1038/ngeo689, 2009.
Le Quéré, C., Andres, R. J., Boden, T., Conway, T., Houghton, R. A., House, J. I., Marland, G., Peters, G. P., van der Werf, G. R., Ahlström, A., Andrew, R. M., Bopp, L., Canadell, J. G., Ciais, P., Doney, S. C., Enright, C., Friedlingstein, P., Huntingford, C., Jain, A. K., Jourdain, C., Kato, E., Keeling, R. F., Klein Goldewijk, K., Levis, S., Levy, P., Lomas, M., Poulter, B., Raupach, M. R., Schwinger, J., Sitch, S., Stocker, B. D., Viovy, N., Zaehle, S., and Zeng, N.: The global carbon budget 1959–2011, Earth Syst. Sci. Data, 5, 165–185, https://doi.org/10.5194/essd-5-165-2013, 2013.
Le Quéré, C., Peters, G. P., Andres, R. J., Andrew, R. M., Boden, T. A., Ciais, P., Friedlingstein, P., Houghton, R. A., Marland, G., Moriarty, R., Sitch, S., Tans, P., Arneth, A., Arvanitis, A., Bakker, D. C. E., Bopp, L., Canadell, J. G., Chini, L. P., Doney, S. C., Harper, A., Harris, I., House, J. I., Jain, A. K., Jones, S. D., Kato, E., Keeling, R. F., Klein Goldewijk, K., Körtzinger, A., Koven, C., Lefèvre, N., Maignan, F., Omar, A., Ono, T., Park, G.-H., Pfeil, B., Poulter, B., Raupach, M. R., Regnier, P., Rödenbeck, C., Saito, S., Schwinger, J., Segschneider, J., Stocker, B. D., Takahashi, T., Tilbrook, B., van Heuven, S., Viovy, N., Wanninkhof, R., Wiltshire, A., and Zaehle, S.: Global carbon budget 2013, Earth Syst. Sci. Data, 6, 235–263, https://doi.org/10.5194/essd-6-235-2014, 2014.
Le Quéré, C., Moriarty, R., Andrew, R. M., Peters, G. P., Ciais, P., Friedlingstein, P., Jones, S. D., Sitch, S., Tans, P., Arneth, A., Boden, T. A., Bopp, L., Bozec, Y., Canadell, J. G., Chini, L. P., Chevallier, F., Cosca, C. E., Harris, I., Hoppema, M., Houghton, R. A., House, J. I., Jain, A. K., Johannessen, T., Kato, E., Keeling, R. F., Kitidis, V., Klein Goldewijk, K., Koven, C., Landa, C. S., Landschützer, P., Lenton, A., Lima, I. D., Marland, G., Mathis, J. T., Metzl, N., Nojiri, Y., Olsen, A., Ono, T., Peng, S., Peters, W., Pfeil, B., Poulter, B., Raupach, M. R., Regnier, P., Rödenbeck, C., Saito, S., Salisbury, J. E., Schuster, U., Schwinger, J., Séférian, R., Segschneider, J., Steinhoff, T., Stocker, B. D., Sutton, A. J., Takahashi, T., Tilbrook, B., van der Werf, G. R., Viovy, N., Wang, Y.-P., Wanninkhof, R., Wiltshire, A., and Zeng, N.: Global carbon budget 2014, Earth Syst. Sci. Data, 7, 47–85, https://doi.org/10.5194/essd-7-47-2015, 2015a.
Le Quéré, C., Moriarty, R., Andrew, R. M., Canadell, J. G., Sitch, S., Korsbakken, J. I., Friedlingstein, P., Peters, G. P., Andres, R. J., Boden, T. A., Houghton, R. A., House, J. I., Keeling, R. F., Tans, P., Arneth, A., Bakker, D. C. E., Barbero, L., Bopp, L., Chang, J., Chevallier, F., Chini, L. P., Ciais, P., Fader, M., Feely, R. A., Gkritzalis, T., Harris, I., Hauck, J., Ilyina, T., Jain, A. K., Kato, E., Kitidis, V., Klein Goldewijk, K., Koven, C., Landschützer, P., Lauvset, S. K., Lefèvre, N., Lenton, A., Lima, I. D., Metzl, N., Millero, F., Munro, D. R., Murata, A., Nabel, J. E. M. S., Nakaoka, S., Nojiri, Y., O'Brien, K., Olsen, A., Ono, T., Pérez, F. F., Pfeil, B., Pierrot, D., Poulter, B., Rehder, G., Rödenbeck, C., Saito, S., Schuster, U., Schwinger, J., Séférian, R., Steinhoff, T., Stocker, B. D., Sutton, A. J., Takahashi, T., Tilbrook, B., van der Laan-Luijkx, I. T., van der Werf, G. R., van Heuven, S., Vandemark, D., Viovy, N., Wiltshire, A., Zaehle, S., and Zeng, N.: Global Carbon Budget 2015, Earth Syst. Sci. Data, 7, 349–396, https://doi.org/10.5194/essd-7-349-2015, 2015b.
Le Quéré, C., Andrew, R. M., Canadell, J. G., Sitch, S., Korsbakken, J. I., Peters, G. P., Manning, A. C., Boden, T. A., Tans, P. P., Houghton, R. A., Keeling, R. F., Alin, S., Andrews, O. D., Anthoni, P., Barbero, L., Bopp, L., Chevallier, F., Chini, L. P., Ciais, P., Currie, K., Delire, C., Doney, S. C., Friedlingstein, P., Gkritzalis, T., Harris, I., Hauck, J., Haverd, V., Hoppema, M., Klein Goldewijk, K., Jain, A. K., Kato, E., Körtzinger, A., Landschützer, P., Lefèvre, N., Lenton, A., Lienert, S., Lombardozzi, D., Melton, J. R., Metzl, N., Millero, F., Monteiro, P. M. S., Munro, D. R., Nabel, J. E. M. S., Nakaoka, S., O'Brien, K., Olsen, A., Omar, A. M., Ono, T., Pierrot, D., Poulter, B., Rödenbeck, C., Salisbury, J., Schuster, U., Schwinger, J., Séférian, R., Skjelvan, I., Stocker, B. D., Sutton, A. J., Takahashi, T., Tian, H., Tilbrook, B., van der Laan-Luijkx, I. T., van der Werf, G. R., Viovy, N., Walker, A. P., Wiltshire, A. J., and Zaehle, S.: Global Carbon Budget 2016, Earth Syst. Sci. Data, 8, 605–649, https://doi.org/10.5194/essd-8-605-2016, 2016.
Le Quéré, C., Andrew, R. M., Friedlingstein, P., Sitch, S., Pongratz, J., Manning, A. C., Korsbakken, J. I., Peters, G. P., Canadell, J. G., Jackson, R. B., Boden, T. A., Tans, P. P., Andrews, O. D., Arora, V. K., Bakker, D. C. E., Barbero, L., Becker, M., Betts, R. A., Bopp, L., Chevallier, F., Chini, L. P., Ciais, P., Cosca, C. E., Cross, J., Currie, K., Gasser, T., Harris, I., Hauck, J., Haverd, V., Houghton, R. A., Hunt, C. W., Hurtt, G., Ilyina, T., Jain, A. K., Kato, E., Kautz, M., Keeling, R. F., Klein Goldewijk, K., Körtzinger, A., Landschützer, P., Lefèvre, N., Lenton, A., Lienert, S., Lima, I., Lombardozzi, D., Metzl, N., Millero, F., Monteiro, P. M. S., Munro, D. R., Nabel, J. E. M. S., Nakaoka, S., Nojiri, Y., Padin, X. A., Peregon, A., Pfeil, B., Pierrot, D., Poulter, B., Rehder, G., Reimer, J., Rödenbeck, C., Schwinger, J., Séférian, R., Skjelvan, I., Stocker, B. D., Tian, H., Tilbrook, B., Tubiello, F. N., van der Laan-Luijkx, I. T., van der Werf, G. R., van Heuven, S., Viovy, N., Vuichard, N., Walker, A. P., Watson, A. J., Wiltshire, A. J., Zaehle, S., and Zhu, D.: Global Carbon Budget 2017, Earth Syst. Sci. Data, 10, 405–448, https://doi.org/10.5194/essd-10-405-2018, 2018a.
Le Quéré, C., Andrew, R. M., Friedlingstein, P., Sitch, S., Hauck, J., Pongratz, J., Pickers, P. A., Korsbakken, J. I., Peters, G. P., Canadell, J. G., Arneth, A., Arora, V. K., Barbero, L., Bastos, A., Bopp, L., Chevallier, F., Chini, L. P., Ciais, P., Doney, S. C., Gkritzalis, T., Goll, D. S., Harris, I., Haverd, V., Hoffman, F. M., Hoppema, M., Houghton, R. A., Hurtt, G., Ilyina, T., Jain, A. K., Johannessen, T., Jones, C. D., Kato, E., Keeling, R. F., Goldewijk, K. K., Landschützer, P., Lefèvre, N., Lienert, S., Liu, Z., Lombardozzi, D., Metzl, N., Munro, D. R., Nabel, J. E. M. S., Nakaoka, S., Neill, C., Olsen, A., Ono, T., Patra, P., Peregon, A., Peters, W., Peylin, P., Pfeil, B., Pierrot, D., Poulter, B., Rehder, G., Resplandy, L., Robertson, E., Rocher, M., Rödenbeck, C., Schuster, U., Schwinger, J., Séférian, R., Skjelvan, I., Steinhoff, T., Sutton, A., Tans, P. P., Tian, H., Tilbrook, B., Tubiello, F. N., van der Laan-Luijkx, I. T., van der Werf, G. R., Viovy, N., Walker, A. P., Wiltshire, A. J., Wright, R., Zaehle, S., and Zheng, B.: Global Carbon Budget 2018, Earth Syst. Sci. Data, 10, 2141–2194, https://doi.org/10.5194/essd-10-2141-2018, 2018b.
Le Quéré, C., Korsbakken, J. I., Wilson, C., Tosun, J., Andrew, R.,
Andres, R. J., Canadell, J. G., Jordan, A., Peters, G. P., and van Vuuren, D.
P.: Drivers of declining CO2 emissions in 18 developed economies,
Nat. Clim. Change, 9, 213–217, https://doi.org/10.1038/s41558-019-0419-7, 2019.
Li, H. and Ilyina, T.: Current and Future Decadal Trends in the Oceanic
Carbon Uptake Are Dominated by Internal Variability, Geophys. Res. Lett.,
45, 916–925, https://doi.org/10.1002/2017gl075370, 2018.
Li, W., Ciais, P., Peng, S., Yue, C., Wang, Y., Thurner, M., Saatchi, S. S., Arneth, A., Avitabile, V., Carvalhais, N., Harper, A. B., Kato, E., Koven, C., Liu, Y. Y., Nabel, J. E. M. S., Pan, Y., Pongratz, J., Poulter, B., Pugh, T. A. M., Santoro, M., Sitch, S., Stocker, B. D., Viovy, N., Wiltshire, A., Yousefpour, R., and Zaehle, S.: Land-use and land-cover change carbon emissions between 1901 and 2012 constrained by biomass observations, Biogeosciences, 14, 5053–5067, https://doi.org/10.5194/bg-14-5053-2017, 2017.
Lienert, S. and Joos, F.: A Bayesian ensemble data assimilation to constrain model parameters and land-use carbon emissions, Biogeosciences, 15, 2909–2930, https://doi.org/10.5194/bg-15-2909-2018, 2018.
Liu, Z., Guan, D., Wei, W., Davis, S. J., Ciais, P., Bai, J., Peng, S., Zhang,
Q., Hubacek, K., Marland, G., Andres, R. J., Crawford-Brown, D., Lin, J., Zhao, H., Hong,
C., Boden, T. A., Feng, K., Peters, G. P., Xi, F., Liu, J., Li, Y., Zhao, Y., Zeng, N. and He,
K.: Reduced carbon emission estimates from fossil fuel combustion and cement production in
China, Nature, 524, 335–338, https://doi.org/10.1038/nature14677, 2015.
Manning, A. C. and Keeling, R. F.: Global oceanic and land biotic carbon
sinks from the scripps atmospheric oxygen flask sampling network, Tellus,
Ser. B., 58, 95–116,
https://doi.org/10.1111/j.1600-0889.2006.00175.x, 2006.
Marland, G.: Uncertainties in Accounting for CO2 From Fossil Fuels, J. Ind.
Ecol., 12, 136–139, https://doi.org/10.1111/j.1530-9290.2008.00014.x, 2008.
Marland, G. and Rotty, R. M.: Carbon-Dioxide Emissions from Fossil-Fuels – a
Procedure for Estimation and Results for 1950–1982, Tellus Ser. B, 36, 232–261, https://doi.org/10.1111/j.1600-0889.1984.tb00245.x, 1984.
Marland, G., Hamal, K., and Jonas, M.: How Uncertain Are Estimates of
CO2 Emissions?, J. Ind. Ecol., 13, 4–7,
https://doi.org/10.1111/j.1530-9290.2009.00108.x, 2009.
Masarie, K. A. and Tans, P. P.: Extension and Integration of Atmospheric
Carbon-Dioxide Data into a Globally Consistent Measurement Record, J.
Geophys. Res., 100, 11593–11610, https://doi.org/10.1029/95jd00859, 1995.
Mauritsen, T., Bader, J., Becker, T., Behrens, J., Bittner, M., Brokopf, R.,
Brovkin, V., Claussen, M., Crueger, T., Esch, M., Fast, I., Fiedler, S.,
Fläschner, D., Gayler, V., Giorgetta, M., Goll, D. S., Haak, H.,
Hagemann, S., Hedemann, C., Hohenegger, C., Ilyina, T., Jahns, T.,
Jimenéz-de-la-Cuesta, D., Jungclaus, J., Kleinen, T., Kloster, S.,
Kracher, D., Kinne, S., Kleberg, D., Lasslop, G., Kornblueh, L., Marotzke,
J., Matei, D., Meraner, K., Mikolajewicz, U., Modali, K., Möbis, B.,
Müller, W. A., Nabel, J. E. M. S., Nam, C. C. W., Notz, D., Nyawira, S.,
Paulsen, H., Peters, K., Pincus, R., Pohlmann, H., Pongratz, J., Popp, M.,
Raddatz, T. J., Rast, S., Redler, R., Reick, C. H., Rohrschneider, T.,
Schemann, V., Schmidt, H., Schnur, R., Schulzweida, U., Six, K. D., Stein,
L., Stemmler, I., Stevens, B., Storch, J., Tian, F., Voigt, A., Vrese, P.,
Wieners, K., Wilkenskjeld, S., Winkler, A., and Roeckner, E.: Developments in
the MPI-M Earth System Model version 1.2 (MPI-ESM1.2) and Its Response to
Increasing CO2, J. Adv. Model. Earth Sy., 11, 998–1038,
https://doi.org/10.1029/2018MS001400, 2019.
MCI: Ministry of Commerce and Industry: Foreign Trade Data Dissemination
Portal, available at: http://14.98.253.4/, last access: 3 November 2019.
McKinley, G. A., Pilcher, D. J., Fay, A. R., Lindsay, K., Long, M. C., and
Lovenduski, N. S.: Timescales for detection of trends in the ocean carbon
sink, Nature, 530, 469–472, https://doi.org/10.1038/nature16958, 2016.
McNeil, B. I., Matear, R. J., Key, R. M., Bullister, J. L., and Sarmiento, J.
L.: Anthropogenic CO2 uptake by the ocean based on the global
chlorofluorocarbon data set, Science, 299, 235–239,
https://doi.org/10.1126/science.1077429, 2003.
Meiyappan, P., Jain, A. K., and House, J. I.: Increased influence of nitrogen
limitation on CO2 emissions from future land use and land use change,
Global Biogeochem. Cy., 29, 1524–1548, https://doi.org/10.1002/2015gb005086,
2015.
Melton, J. R. and Arora, V. K.: Competition between plant functional types in the Canadian Terrestrial Ecosystem Model (CTEM) v. 2.0, Geosci. Model Dev., 9, 323–361, https://doi.org/10.5194/gmd-9-323-2016, 2016.
Mercado, L. M., Bellouin, N., Sitch, S., Boucher, O., Huntingford, C., Wild,
M., and Cox, P. M.: Impact of changes in diffuse radiation on the global land
carbon sink, Nature, 458, 1014–1017, https://doi.org/10.1038/nature07949, 2009.
Merlin, O., Al Bitar, A., Rivalland, V., Béziat, P., Ceschia, E., and
Dedieu, G.: An Analytical Model of Evaporation Efficiency for Unsaturated
Soil Surfaces with an Arbitrary Thickness, J. Appl. Meteorol. Clim.,
50, 457–471, https://doi.org/10.1175/2010JAMC2418.1, 2011.
Mikaloff Fletcher, S. E., Gruber, N., Jacobson, A. R., Doney, S. C.,
Dutkiewicz, S., Gerber, M., Follows, M., Joos, F., Lindsay, K., Menemenlis,
D., Mouchet, A., Müller, S. A., and Sarmiento, J. L.: Inverse estimates
of anthropogenic CO2 uptake, transport, and storage by the ocean, Global
Biogeochem. Cy., 20, GB2002, https://doi.org/10.1029/2005GB002530, 2006.
Millar, R. J., Fuglestvedt, J. S., Friedlingstein, P., Rogelj, J., Grubb, M.
J., Matthews, H. D., Skeie, R. B., Forster, P. M., Frame, D. J., and Allen,
M. R.: Emission budgets and pathways consistent with limiting warming to 1.5∘ C, Nat. Geosci., 10, 741–747, https://doi.org/10.1038/ngeo3031, 2017.
Ministry of Mines: Ministry of Mines: Mineral Production, available at:
http://ibm.nic.in/index.php?c=pages&m=index&id=497, last access:
18 September 2019.
Myhre, G., Alterskjær, K., and Lowe, D.: A fast method for updating
global fossil fuel carbon dioxide emissions, Environ. Res. Lett., 4,
034012, https://doi.org/10.1088/1748-9326/4/3/034012, 2009.
Myneni, R. B., Ramakrishna, R., Nemani, R., and Running, S. W.: Estimation of
global leaf area index and absorbed par using radiative transfer models,
IEEE T. Geosci. Remote, 35, 1380–1393, https://doi.org/10.1109/36.649788,
1997.
Narayanan, B., Aguiar, A., and McDougall, R.: Global Trade, Assistance, and
Production: The GTAP 9 Data Base, Cent. Glob. Trade Anal. Purdue Univ.,
available at:
https://www.gtap.agecon.purdue.edu/databases/v9/default.asp, September 2015.
NBS: Energy supply growth is speeding up, and the share of clean energy is
continuously increasing, The department director interprets the half-yearly
report, National Bureau of
Statistics, available at: http://www.stats.gov.cn/tjsj/sjjd/201907/t20190717_1676924.html, last access 23 September 2019a.
NBS: National Bureau of Statistics, 2019, Statistical Communiqué of the
People's Republic of China on the 2018 National Economic and Social
Development, available at:
http://www.stats.gov.cn/english/PressRelease/201902/t20190228_1651335.html, last access: 23 September 2019b.
NBS: National Bureau of Statistics (NBS): National Data (online database), National Bureau of
Statistics, available at:
http://data.stats.gov.cn/, last access: 1 November 2019c.
NOAA/ESRL: NOAA Greenhouse Gas Marine Boundary Layer Reference, available
at: https://www.esrl.noaa.gov/gmd/ccgg/mbl/mbl.html, last access: 27
September 2019.
OEA: Index of Eight Core Industries, available at:
http://eaindustry.nic.in/home.asp, last access: 5 November 2019.
Paulsen, H., Ilyina, T., Six, K. D., and Stemmler, I.: Incorporating a
prognostic representation of marine nitrogen fixers into the global ocean
biogeochemical model HAMOCC, J. Adv. Model. Earth Sy., 9, 438–464,
https://doi.org/10.1002/2016MS000737, 2017.
Peters, G. P., Andrew, R., and Lennox, J.: Constructing an
environmentally-extended multi-regional input-output table using the GTAP
database, Econ. Syst. Res., 23, 131–152,
https://doi.org/10.1080/09535314.2011.563234, 2011a.
Peters, G. P., Minx, J. C., Weber, C. L., and Edenhofer, O.: Growth in
emission transfers via international trade from 1990 to 2008, P. Natl.
Acad. Sci. USA, 108, 8903–8908, https://doi.org/10.1073/pnas.1006388108, 2011b.
Peters, G. P., Davis, S. J., and Andrew, R.: A synthesis of carbon in international trade, Biogeosciences, 9, 3247–3276, https://doi.org/10.5194/bg-9-3247-2012, 2012a.
Peters, G. P., Marland, G., Le Quéré, C., Boden, T., Canadell, J. G.,
and Raupach, M. R.: Rapid growth in CO2 emissions after the 2008–2009
global financial crisis, Nat. Clim. Change, 2, 2–4,
https://doi.org/10.1038/nclimate1332, 2012b.
Peters, G. P., Andrew, R. M., Boden, T., Canadell, J. G., Ciais, P., Le
Quéré, C., Marland, G., Raupach, M. R., and Wilson, C.: The challenge
to keep global warming below 2 ∘ C, Nat. Clim. Change, 3, 4–6,
https://doi.org/10.1038/nclimate1783, 2013.
Peters, G. P., Le Quéré, C., Andrew, R. M., Canadell, J. G.,
Friedlingstein, P., Ilyina, T., Jackson, R. B., Joos, F., Korsbakken, J. I.,
McKinley, G. A., Sitch, S., and Tans, P.: Towards real-time verification of
CO2 emissions, Nat. Clim. Change, 7, 848–850,
https://doi.org/10.1038/s41558-017-0013-9, 2017.
Peylin, P., Law, R. M., Gurney, K. R., Chevallier, F., Jacobson, A. R., Maki, T., Niwa, Y., Patra, P. K., Peters, W., Rayner, P. J., Rödenbeck, C., van der Laan-Luijkx, I. T., and Zhang, X.: Global atmospheric carbon budget: results from an ensemble of atmospheric CO2 inversions, Biogeosciences, 10, 6699–6720, https://doi.org/10.5194/bg-10-6699-2013, 2013.
Pfeil, B., Olsen, A., Bakker, D. C. E., Hankin, S., Koyuk, H., Kozyr, A., Malczyk, J., Manke, A., Metzl, N., Sabine, C. L., Akl, J., Alin, S. R., Bates, N., Bellerby, R. G. J., Borges, A., Boutin, J., Brown, P. J., Cai, W.-J., Chavez, F. P., Chen, A., Cosca, C., Fassbender, A. J., Feely, R. A., González-Dávila, M., Goyet, C., Hales, B., Hardman-Mountford, N., Heinze, C., Hood, M., Hoppema, M., Hunt, C. W., Hydes, D., Ishii, M., Johannessen, T., Jones, S. D., Key, R. M., Körtzinger, A., Landschützer, P., Lauvset, S. K., Lefèvre, N., Lenton, A., Lourantou, A., Merlivat, L., Midorikawa, T., Mintrop, L., Miyazaki, C., Murata, A., Nakadate, A., Nakano, Y., Nakaoka, S., Nojiri, Y., Omar, A. M., Padin, X. A., Park, G.-H., Paterson, K., Perez, F. F., Pierrot, D., Poisson, A., Ríos, A. F., Santana-Casiano, J. M., Salisbury, J., Sarma, V. V. S. S., Schlitzer, R., Schneider, B., Schuster, U., Sieger, R., Skjelvan, I., Steinhoff, T., Suzuki, T., Takahashi, T., Tedesco, K., Telszewski, M., Thomas, H., Tilbrook, B., Tjiputra, J., Vandemark, D., Veness, T., Wanninkhof, R., Watson, A. J., Weiss, R., Wong, C. S., and Yoshikawa-Inoue, H.: A uniform, quality controlled Surface Ocean CO2 Atlas (SOCAT), Earth Syst. Sci. Data, 5, 125–143, https://doi.org/10.5194/essd-5-125-2013, 2013.
Piao, S., Huang, M., Liu, Z., Wang, X. H., Ciais, P., Canadell, J. G., Wang,
K., Bastos, A., Friedlingstein, P., Houghton, R. A., Le Quéré, C.,
Liu, Y. W., Myneni, R. B., Peng, S. S., Pongratz, J., Sitch, S., Yan, T.,
Wang, Y. L., Zhu, Z. C., Wu, D. H., and Wang, T.: Lower land-use emissions
responsible for increased net land carbon sink during the slow warming
period, Nat. Geosci., 11, 739–743, https://doi.org/10.1038/s41561-018-0204-7, 2018.
Pongratz, J., Reick, C. H., Raddatz, T., and Claussen, M.: Effects of
anthropogenic land cover change on the carbon cycle of the last millennium,
Global Biogeochem. Cy., 23, GB4001, https://doi.org/10.1029/2009GB003488, 2009.
Pongratz, J., Reick, C. H., Houghton, R. A., and House, J. I.: Terminology as a key uncertainty in net land use and land cover change carbon flux estimates, Earth Syst. Dynam., 5, 177–195, https://doi.org/10.5194/esd-5-177-2014, 2014.
Poulter, B., Frank, D. C., Hodson, E. L., and Zimmermann, N. E.: Impacts of land cover and climate data selection on understanding terrestrial carbon dynamics and the CO2 airborne fraction, Biogeosciences, 8, 2027–2036, https://doi.org/10.5194/bg-8-2027-2011, 2011.
PPAC: Natural Gas, Petroleum Planning and Analysis Cell, Ministry of
Petroleum and Natural Gas, available at: http://eaindustry.nic.in/home.asp,
last access: 5 November 2019a.
PPAC: Petroleum, Petroleum Planning and Analysis Cell, Ministry of Petroleum
and Natural Gas, available at: http://eaindustry.nic.in/home.asp, last
access: 17 October 2019b.
Prentice, I. C., Farquhar, G. D., Fasham, M. J. R., Goulden, M. L., Heimann,
M., Jaramillo, V. J., Kheshgi, H. S., Le Quéré, C., Scholes, R. J.,
Wallace, D. W. R., and Press, C. U.: The Carbon Cycle and Atmospheric Carbon
Dioxide, in Climate Change 2001: The Scientific Basis, Contribution of
Working Group I to the Third Assessment Report of the Intergovernmental
Panel on Climate Change, edited by: Houghton, J. T., Ding, Y., Griggs, D. J.,
Noguer, M., van der Linden, P. J., Dai, X., Maskell, K., and Johnson, C. A.,
Cambridge University Press, Cambridge, United Kingdom and New
York, NY, USA, 183–237, 2001.
Price, J. T. and Warren, R.: Review of the Potential of “Blue Carbon”
Activities to Reduce Emissions; available at: http://avoid-net-uk.cc.ic.ac.uk/wpcontent/uploads/delightful-downloads/2016/03/Literature-review-of-the-potential-of-bluecarbon-activities-to-reduce-emissions-AVOID2-WPE2.pdf (last access: 25 July 2018), 2016.
Raupach, M. R., Marland, G., Ciais, P., Le Quéré, C., Canadell, J.
G., Klepper, G., and Field, C. B.: Global and regional drivers of
accelerating CO2 emissions, P. Natl. Acad. Sci. USA, 104,
10288–10293, https://doi.org/10.1073/pnas.0700609104, 2007.
Regnier, P., Friedlingstein, P., Ciais, P., Mackenzie, F. T., Gruber, N.,
Janssens, I. A., Laruelle, G. G., Lauerwald, R., Luyssaert, S., Andersson,
A. J., Arndt, S., Arnosti, C., Borges, A. V., Dale, A. W., Gallego-Sala, A.,
Goddéris, Y., Goossens, N., Hartmann, J., Heinze, C., Ilyina, T., Joos,
F., LaRowe, D. E., Leifeld, J., Meysman, F. J. R., Munhoven, G., Raymond, P.
A., Spahni, R., Suntharalingam, P., and Thullner, M.: Anthropogenic
perturbation of the carbon fluxes from land to ocean, Nat. Geosci., 6,
597–607, https://doi.org/10.1038/ngeo1830, 2013.
Remaud, M., Chevallier, F., Cozic, A., Lin, X., and Bousquet, P.: On the impact of recent developments of the LMDz atmospheric general circulation model on the simulation of CO2 transport, Geosci. Model Dev., 11, 4489–4513, https://doi.org/10.5194/gmd-11-4489-2018, 2018.
Resplandy, L., Keeling, R. F., Rödenbeck, C., Stephens, B. B.,
Khatiwala, S., Rodgers, K. B., Long, M. C., Bopp, L., and Tans, P. P.:
Revision of global carbon fluxes based on a reassessment of oceanic and
riverine carbon transport, Nat. Geosci., 11, 504–509,
https://doi.org/10.1038/s41561-018-0151-3, 2018.
Rhein, M., Rintoul, S. R., Aoki, S., Campos, E., Chambers, D., Feely, R. A.,
Gulev, S., Johnson, G. C., Josey, S. A., Kostianoy, A., Mauritzen, C.,
Roemmich, D., Talley, L. D., Wang, F., Stocker, T., Qin, D., and Platner,
G.-K.: Chapter 3: Observations: Ocean, in: Climate Change 2013 The Physical
Science Basis, Cambridge University Press, 2013.
Rödenbeck, C.: Estimating CO2 sources and sinks from atmospheric
mixing ratio measurements using a global inversion of atmospheric transport, Technical
Report 6, available at: http://www.bgc-jena.mpg.de/CarboScope/s/tech_report6.pdf (last
accessed: 1 November 2019), Max Planck Institute for Biogeochemistry, Jena, 2005.
Rödenbeck, C., Houweling, S., Gloor, M., and Heimann, M.: CO2 flux history 1982–2001 inferred from atmospheric data using a global inversion of atmospheric transport, Atmos. Chem. Phys., 3, 1919–1964, https://doi.org/10.5194/acp-3-1919-2003, 2003.
Rödenbeck, C., Keeling, R. F., Bakker, D. C. E., Metzl, N., Olsen, A., Sabine, C., and Heimann, M.: Global surface-ocean pCO2 and sea–air CO2 flux variability from an observation-driven ocean mixed-layer scheme, Ocean Sci., 9, 193–216, https://doi.org/10.5194/os-9-193-2013, 2013.
Rödenbeck, C., Bakker, D. C. E., Metzl, N., Olsen, A., Sabine, C., Cassar, N., Reum, F., Keeling, R. F., and Heimann, M.: Interannual sea–air CO2 flux variability from an observation-driven ocean mixed-layer scheme, Biogeosciences, 11, 4599–4613, https://doi.org/10.5194/bg-11-4599-2014, 2014.
Rödenbeck, C., Bakker, D. C. E., Gruber, N., Iida, Y., Jacobson, A. R., Jones, S., Landschützer, P., Metzl, N., Nakaoka, S., Olsen, A., Park, G.-H., Peylin, P., Rodgers, K. B., Sasse, T. P., Schuster, U., Shutler, J. D., Valsala, V., Wanninkhof, R., and Zeng, J.: Data-based estimates of the ocean carbon sink variability – first results of the Surface Ocean pCO2 Mapping intercomparison (SOCOM), Biogeosciences, 12, 7251–7278, https://doi.org/10.5194/bg-12-7251-2015, 2015.
Rödenbeck, C., Zaehle, S., Keeling, R., and Heimann, M.: How does the terrestrial carbon exchange respond to inter-annual climatic variations? A quantification based on atmospheric CO2 data, Biogeosciences, 15, 2481–2498, https://doi.org/10.5194/bg-15-2481-2018, 2018.
Rogelj, J., Schaeffer, M., Friedlingstein, P., Gillett, N. P., van Vuuren,
D. P., Riahi, K., Allen, M., and Knutti, R.: Differences between carbon
budget estimates unravelled, Nat. Clim. Change, 6, 245–252,
https://doi.org/10.1038/Nclimate2868, 2016.
Rogelj, J., Forster, P. M., Kriegler, E., Smith, C. J., and Séférian,
R.: Estimating and tracking the remaining carbon budget for stringent
climate targets, Nature, 571, 335–342, https://doi.org/10.1038/s41586-019-1368-z,
2019.
Rypdal, K., Paciomik, N., Eggleston, S., Goodwin, J., Irving, W., Penman, J.,
and Woodfield, M.: Chapter 1 Introduction to the 2006 Guidelines, in 2006
IPCC Guidelines for National Greenhouse Gas Inventories, edited by:
Eggleston, S., Buendia, L., Miwa, K., Ngara, T., and Tanabe, K., Institute for
Global Environmental Strategies (IGES), Hayama, Kanagawa, Japan, 2006.
Saatchi, S. S., Harris, N. L., Brown, S., Lefsky, M., Mitchard, E. T. A.,
Salas, W., Zutta, B. R., Buermann, W., Lewis, S. L., Hagen, S., Petrova, S.,
White, L., Silman, M., and Morel, A.: Benchmark map of forest carbon stocks
in tropical regions across three continents, P. Natl. Acad. Sci. USA,
108, 9899–9904, https://doi.org/10.1073/pnas.1019576108, 2011.
Sabine, C. L., Feely, R. A., Gruber, N., Key, R. M., Lee, K., Bullister, J. L.,
Wanninkhof, R., Wong, C. S., Wallace, D. W. R., Tilbrook, B., Millero, F. J., Peng, T.-H.,
Kozyr, A., Ono, T., and Rio, A. F.: The Oceanic Sink for Anthropogenic CO2, Science,
305, 367–371, https://doi.org/10.1126/science.1097403, 2004.
Saunois, M., Bousquet, P., Poulter, B., Peregon, A., Ciais, P., Canadell, J. G., Dlugokencky, E. J., Etiope, G., Bastviken, D., Houweling, S., Janssens-Maenhout, G., Tubiello, F. N., Castaldi, S., Jackson, R. B., Alexe, M., Arora, V. K., Beerling, D. J., Bergamaschi, P., Blake, D. R., Brailsford, G., Brovkin, V., Bruhwiler, L., Crevoisier, C., Crill, P., Covey, K., Curry, C., Frankenberg, C., Gedney, N., Höglund-Isaksson, L., Ishizawa, M., Ito, A., Joos, F., Kim, H.-S., Kleinen, T., Krummel, P., Lamarque, J.-F., Langenfelds, R., Locatelli, R., Machida, T., Maksyutov, S., McDonald, K. C., Marshall, J., Melton, J. R., Morino, I., Naik, V., O'Doherty, S., Parmentier, F.-J. W., Patra, P. K., Peng, C., Peng, S., Peters, G. P., Pison, I., Prigent, C., Prinn, R., Ramonet, M., Riley, W. J., Saito, M., Santini, M., Schroeder, R., Simpson, I. J., Spahni, R., Steele, P., Takizawa, A., Thornton, B. F., Tian, H., Tohjima, Y., Viovy, N., Voulgarakis, A., van Weele, M., van der Werf, G. R., Weiss, R., Wiedinmyer, C., Wilton, D. J., Wiltshire, A., Worthy, D., Wunch, D., Xu, X., Yoshida, Y., Zhang, B., Zhang, Z., and Zhu, Q.: The global methane budget 2000–2012, Earth Syst. Sci. Data, 8, 697–751, https://doi.org/10.5194/essd-8-697-2016, 2016.
SCCL: Singareni Collieries Company Limited (SCCL): Provisional Production
and Dispatches Performance. Singareni Collieries Company Limited, available
at: https://scclmines.com/scclnew/performance_production.asp,
last access: 3 September 2019.
Schimel, D., Alves, D., Enting, I., Heimann, M., Joos, F., Raynaud, D.,
Wigley, T., Prater, M., Derwent, R., Ehhalt, D., Fraser, P., Sanhueza, E.,
Zhou, X., Jonas, P., Charlson, R., Rodhe, H., Sadasivan, S., Shine, K. P.,
Fouquart, Y., Ramaswamy, V., Solomon, S., Srinivasan, J., Albritton, D.,
Derwent, R., Isaksen, I., Lal, M., Wuebbles, D., and Press, C. U.: Radiative
Forcing of Climate Change, in: Climate Change 1995 The Science of Climate
Change. Contribution of Working Group I to the Second Assessment Report of
the Intergovernmental Panel on Climate Change, edited by: Houghton, J. T., Meira Rilho, L.
G., Callander, B. A., Harris, N., Kattenberg, A., and Maskell, K.,
Cambridge University Press, Cambridge, United Kingdom and New York, NY,
USA, 1995.
Schimel, D., Stephens, B. B., and Fisher, J. B.: Effect of increasing
CO2 on the terrestrial carbon cycle, P. Natl. Acad. Sci. USA,
112, 436–441, https://doi.org/10.1073/pnas.1407302112, 2015.
Schwietzke, S., Sherwood, O. A., Bruhwiler, L. M., Miller, J. B., Etiope,
G., Dlugokencky, E. J., Michel, S. E., Arling, V. A., Vaughn, B. H., White,
J. W., and Tans, P. P.: Upward revision of global fossil fuel methane
emissions based on isotope database, Nature, 538, 88–91,
https://doi.org/10.1038/nature19797, 2016.
Schwinger, J., Goris, N., Tjiputra, J. F., Kriest, I., Bentsen, M., Bethke, I., Ilicak, M., Assmann, K. M., and Heinze, C.: Evaluation of NorESM-OC (versions 1 and 1.2), the ocean carbon-cycle stand-alone configuration of the Norwegian Earth System Model (NorESM1), Geosci. Model Dev., 9, 2589–2622, https://doi.org/10.5194/gmd-9-2589-2016, 2016.
Séférian, R., Delire, C., Decharme, B., Voldoire, A., Salas y Melia, D., Chevallier, M., Saint-Martin, D., Aumont, O., Calvet, J.-C., Carrer, D., Douville, H., Franchistéguy, L., Joetzjer, E., and Sénési, S.: Development and evaluation of CNRM Earth system model – CNRM-ESM1, Geosci. Model Dev., 9, 1423–1453, https://doi.org/10.5194/gmd-9-1423-2016, 2016.
Sellar, A. A., Jones, C.
G., Mulcahy, J., Tang, Y., Yool, A., Wiltshire, A., O’Connor, F. M., Stringer, M., Hill, R.,
Palmieri, J., Woodward, S., Mora, L., Kuhlbrodt, T., Rumbold, S., Kelley, D. I., Ellis, R.,
Johnson, C. E., Walton, J., Abraham, N. L., Andrews, M. B., Andrews, T., Archibald, A. T.,
Berthou, S., Burke, E., Blockley, E., Carslaw, K., Dalvi, M., Edwards, J., Folberth, G. A.,
Gedney, N., Griffiths, P. T., Harper, A. B., Hendry, M. A., Hewitt, A. J., Johnson, B., Jones,
A., Jones, C. D., Keeble, J., Liddicoat, S., Morgenstern, O., Parker, R. J., Predoi, V.,
Robertson, E., Siahaan, A., Smith, R. S., Swaminathan, R., Woodhouse, M. T., Zeng, G., and
Zerroukat, M.: UKESM1: Description and evaluation of the UK Earth System Model, J. Adv.
Model. Earth Sy., 2019MS001739, https://doi.org/10.1029/2019MS001739, accepted, 2019.
Shangguan, W., Hengl, T., Mendes de Jesus, J., Yuan, H., and Dai, Y.: Mapping
the global depth to bedrock for land surface modeling, J. Adv. Model. Earth
Sy., 9, 65–88, https://doi.org/10.1002/2016MS000686, 2017.
Shevliakova, E., Pacala, S. W., Malyshev, S., Hurtt, G. C., Milly, P. C. D.,
Caspersen, J. P., Sentman, L. T., Fisk, J. P., Wirth, C., and Crevoisier, C.:
Carbon cycling under 300 years of land use change: Importance of the
secondary vegetation sink, Global Biogeochem. Cy., 23, GB2022,
https://doi.org/10.1029/2007GB003176, 2009.
Sitch, S., Huntingford, C., Gedney, N., Levy, P. E., Lomas, M., Piao, S. L.,
Betts, R., Ciais, P., Cox, P., Friedlingstein, P., Jones, C. D., Prentice,
I. C., and Woodward, F. I.: Evaluation of the terrestrial carbon cycle,
future plant geography and climate-carbon cycle feedbacks using five Dynamic
Global Vegetation Models (DGVMs), Glob. Change Biol., 14, 2015–2039,
https://doi.org/10.1111/j.1365-2486.2008.01626.x, 2008.
Smith, B., Wårlind, D., Arneth, A., Hickler, T., Leadley, P., Siltberg, J., and Zaehle, S.: Implications of incorporating N cycling and N limitations on primary production in an individual-based dynamic vegetation model, Biogeosciences, 11, 2027–2054, https://doi.org/10.5194/bg-11-2027-2014, 2014.
Stephens, B. B., Gurney, K. R., Tans, P. P., Sweeney, C., Peters, W.,
Bruhwiler, L., Ciais, P., Ramonet, M., Bousquet, P., Nakazawa, T., Aoki, S.,
Machida, T., Inoue, G., Vinnichenko, N., Lloyd, J., Jordan, A., Heimann, M.,
Shibistova, O., Langenfelds, R. L., Steele, L. P., Francey, R. J., and
Denning, A. S.: Weak northern and strong tropical land carbon uptake from
vertical profiles of atmospheric CO2, Science, 316,
1732–1735, https://doi.org/10.1126/science.1137004, 2007.
Stocker, T., Qin, D., and Platner, G.-K.: Climate Change 2013 The Physical
Science Basis, Cambridge University Press, 2013.
Swart, N. C., Fyfe, J. C., Saenko, O. A., and Eby, M.: Wind-driven changes in the ocean carbon sink, Biogeosciences, 11, 6107–6117, https://doi.org/10.5194/bg-11-6107-2014, 2014.
Tian, H., Xu, X., Lu, C., Liu, M., Ren, W., Chen, G., Melillo, J., and Liu,
J.: Net exchanges of CO2, CH4, and N2O between China's terrestrial
ecosystems and the atmosphere and their contributions to global climate
warming, J. Geophys. Res., 116, G02011, https://doi.org/10.1029/2010jg001393, 2011.
Tian, H., Chen, G., Lu, C., Xu, X., Hayes, D. J., Ren, W., Pan, S.,
Huntzinger, D. N., and Wofsy, S. C.: North American terrestrial
CO2uptake largely offset by CH4 and N2O emissions: toward a
full accounting of the greenhouse gas budget, Climatic Change, 129,
413–426, https://doi.org/10.1007/s10584-014-1072-9, 2015.
Todd-Brown, K. E. O., Randerson, J. T., Post, W. M., Hoffman, F. M., Tarnocai, C., Schuur, E. A. G., and Allison, S. D.: Causes of variation in soil carbon simulations from CMIP5 Earth system models and comparison with observations, Biogeosciences, 10, 1717–1736, https://doi.org/10.5194/bg-10-1717-2013, 2013.
UN: United Nations Statistics Division: National Accounts Main Aggregates
Database, available at: http://unstats.un.org/unsd/snaama/Introduction.asp
(last access: 2 January 2018), 2017.
UN: United Nations Statistics Division: Energy Statistics, available at:
http://unstats.un.org/unsd/energy/ (last access: 27 September 2019), 2018.
UNFCCC: National Inventory Submissions, available at:
https://unfccc.int/process-and-meetings/transparency-and-reporting/reporting-and-review-under-the-convention/greenhouse-gas-inventories-annex-i-parties/national-inventory-submissions-2019,
last access: 20 June 2019.
van der Laan-Luijkx, I. T., van der Velde, I. R., van der Veen, E., Tsuruta, A., Stanislawska, K., Babenhauserheide, A., Zhang, H. F., Liu, Y., He, W., Chen, H., Masarie, K. A., Krol, M. C., and Peters, W.: The CarbonTracker Data Assimilation Shell (CTDAS) v1.0: implementation and global carbon balance 2001–2015, Geosci. Model Dev., 10, 2785–2800, https://doi.org/10.5194/gmd-10-2785-2017, 2017.
van der Velde, I. R., Miller, J. B., Schaefer, K., van der Werf, G. R., Krol, M. C., and Peters, W.: Terrestrial cycling of 13CO2 by photosynthesis, respiration, and biomass burning in SiBCASA, Biogeosciences, 11, 6553–6571, https://doi.org/10.5194/bg-11-6553-2014, 2014.
van der Werf, G. R., Randerson, J. T., Giglio, L., Collatz, G. J., Mu, M., Kasibhatla, P. S., Morton, D. C., DeFries, R. S., Jin, Y., and van Leeuwen, T. T.: Global fire emissions and the contribution of deforestation, savanna, forest, agricultural, and peat fires (1997–2009), Atmos. Chem. Phys., 10, 11707–11735, https://doi.org/10.5194/acp-10-11707-2010, 2010.
van der Werf, G. R., Randerson, J. T., Giglio, L., van Leeuwen, T. T., Chen, Y., Rogers, B. M., Mu, M., van Marle, M. J. E., Morton, D. C., Collatz, G. J., Yokelson, R. J., and Kasibhatla, P. S.: Global fire emissions estimates during 1997–2016, Earth Syst. Sci. Data, 9, 697–720, https://doi.org/10.5194/essd-9-697-2017, 2017.
Van Minnen, J. G., Klein Goldewijk, K., Stehfest, E., Eickhout, B., van
Drecht, G., and Leemans, R.: The importance of three centuries of land-use
change for the global and regional terrestrial carbon cycle, Climatic Change,
97, 123–144, https://doi.org/10.1007/s10584-009-9596-0, 2009.
Varadhan, S.: Coal India expects to resume a third of output 5 at flooded
Dipka mine within 10 days, Reuters, available at: https://www.reuters.com/article/coal-indiamine-floods/coal-india-expects-to-resume-a-third-of-output-at-flooded-dipka-mine-within-10-days-idINKBN1WI1IT, last access: 15 October 2019.
Viovy, N.: CRUNCEP data set, available at:
ftp://nacp.ornl.gov/synthesis/2009/frescati/temp/land_use_change/original/readme.htm, last access: June 2016.
Walker, A. P., Quaife, T., van Bodegom, P. M., De Kauwe, M. G., Keenan, T.
F., Joiner, J., Lomas, M. R., MacBean, N., Xu, C. G., Yang, X. J., and
Woodward, F. I.: The impact of alternative trait-scaling hypotheses for the
maximum photosynthetic carboxylation rate (V-cmax) on global gross primary
production, New Phytol., 215, 1370–1386, https://doi.org/10.1111/nph.14623, 2017.
Wanninkhof, R., Park, G.-H., Takahashi, T., Sweeney, C., Feely, R., Nojiri, Y., Gruber, N., Doney, S. C., McKinley, G. A., Lenton, A., Le Quéré, C., Heinze, C., Schwinger, J., Graven, H., and Khatiwala, S.: Global ocean carbon uptake: magnitude, variability and trends, Biogeosciences, 10, 1983–2000, https://doi.org/10.5194/bg-10-1983-2013, 2013.
Watson, R. T., Rodhe, H., Oeschger, H., Siegenthaler, U., and Press, C. U.:
Greenhouse Gases and Aerosols, in Climate Change: The IPCC Scientific
Assessment. Intergovernmental Panel on Climate Change (IPCC), edited by: Houghton, J.
T., Jenkins, G. J., and Ephraums, J. J., Cambridge
University Press, Cambridge, 1–40, 1990.
Wenzel, S., Cox, P. M., Eyring, V., and Friedlingstein, P.: Projected land
photosynthesis constrained by changes in the seasonal cycle of atmospheric
CO2, Nature, 538, 499–501, https://doi.org/10.1038/nature19772, 2016.
Wilkenskjeld, S., Kloster, S., Pongratz, J., Raddatz, T., and Reick, C. H.: Comparing the influence of net and gross anthropogenic land-use and land-cover changes on the carbon cycle in the MPI-ESM, Biogeosciences, 11, 4817–4828, https://doi.org/10.5194/bg-11-4817-2014, 2014.
Woodward, F. I. and Lomas, M. R.: Vegetation dynamics – simulating
responses to climatic change, Biol. Rev., 79, 643–670,
https://doi.org/10.1017/S1464793103006419, 2004.
Xi, F., Davis, S. J., Ciais, P., Crawford-Brown, D., Guan, D., Pade, C.,
Shi, T., Syddall, M., Lv, J., Ji, L., Bing, L., Wang, J., Wei, W., Yang,
K.-H., Lagerblad, B., Galan, I., Andrade, C., Zhang, Y., and Liu, Z.:
Substantial global carbon uptake by cement carbonation, Nat. Geosci., 9,
880–883, https://doi.org/10.1038/ngeo2840, 2016.
Yin, X. W.: Responses of leaf nitrogen concentration and specific leaf area
to atmospheric CO2 enrichment: a retrospective synthesis across 62
species, Glob. Change Biol., 8, 631–642, https://doi.org/10.1046/j.1365-2486.2002.00497.x, 2002.
Zaehle, S. and Friend, A. D.: Carbon and nitrogen cycle dynamics in the O-CN
land surface model: 1. Model description, site-scale evaluation, and
sensitivity to parameter estimates, Global Biogeochem. Cy., 24, GB1005,
https://doi.org/10.1029/2009GB003521, 2010.
Zaehle, S., Ciais, P., Friend, A. D., and Prieur, V.: Carbon benefits of
anthropogenic reactive nitrogen offset by nitrous oxide emissions, Nat.
Geosci., 4, 601–605, https://doi.org/10.1038/ngeo1207, 2011.
Zheng, B., Chevallier, F., Yin, Y., Ciais, P., Fortems-Cheiney, A., Deeter, M. N., Parker, R. J., Wang, Y., Worden, H. M., and Zhao, Y.: Global atmospheric carbon monoxide budget 2000–2017 inferred from multi-species atmospheric inversions, Earth Syst. Sci. Data, 11, 1411–1436, https://doi.org/10.5194/essd-11-1411-2019, 2019.
Zscheischler, J., Mahecha, M. D., Avitabile, V., Calle, L., Carvalhais, N., Ciais, P., Gans, F., Gruber, N., Hartmann, J., Herold, M., Ichii, K., Jung, M., Landschützer, P., Laruelle, G. G., Lauerwald, R., Papale, D., Peylin, P., Poulter, B., Ray, D., Regnier, P., Rödenbeck, C., Roman-Cuesta, R. M., Schwalm, C., Tramontana, G., Tyukavina, A., Valentini, R., van der Werf, G., West, T. O., Wolf, J. E., and Reichstein, M.: Reviews and syntheses: An empirical spatiotemporal description of the global surface–atmosphere carbon fluxes: opportunities and data limitations, Biogeosciences, 14, 3685–3703, https://doi.org/10.5194/bg-14-3685-2017, 2017.