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description Publicationkeyboard_double_arrow_right Article , Other literature type 2023 Netherlands, GermanyPublisher:Copernicus GmbH Funded by:EC | GREEN GODS, , EC | ESM2025 +10 projectsEC| GREEN GODS ,[no funder available] ,EC| ESM2025 ,NSF| ACO: An Open CI Ecosystem to Advance Scientific Discovery (OpenCI) ,NSF| Track 1: ACCESS Resource Allocations Marketplace and Platform Services (RAMPS) ,SNSF| Climate and Environmental Physics: Modeling Global Biogeochemical Cycles in the Earth System 2021-2025 (bgcCEP20) ,NSF| INFEWS: U.S.-China: Integrated systems modeling for sustainable FEW nexus under multi-factor global changes: Innovative comparison between Yellow River and Mississippi River Basins ,UKRI| The UK Earth system modelling project ,NSF| NRT: Addressing resiliency to climate-related hazards and disasters through data-informed decision making ,NSF| Track 2: Customized Multi-tier Assistance, Training, and Computational Help (MATCH) for End User ACCESS to CI ,NSF| Track 3: COre National Ecosystem for CyberinfrasTructure (CONECT) ,UKRI| NCEO LTS-S ,NSF| Track 4: Advanced CI Coordination Ecosystem: Monitoring and Measurement ServicesHanqin Tian; Naiqing Pan; Rona L. Thompson; Josep G. Canadell; P. Suntharalingam; Pierre Regnier; Eric A. Davidson; Michael J. Prather; Philippe Ciais; Marilena Muntean; Shufen Pan; Wilfried Winiwarter; Sönke Zaehle; Feng Zhou; Robert B. Jackson; Hermann W. Bange; Sarah Berthet; Zihao Bian; Daniele Bianchi; Lex Bouwman; Erik T. Buitenhuis; G. S. Dutton; Minpeng Hu; Akihiko Ito; Atul K. Jain; Aurich Jeltsch‐Thömmes; Fortunat Joos; Sian Kou‐Giesbrecht; P. B. Krummel; Lan X; Angela Landolfi; Ronny Lauerwald; Ya Li; Chaoqun Lü; Taylor Maavara; Manfredi Manizza; Dylan B. Millet; Jens Mühle; Prabir K. Patra; Glen P. Peters; Xiaoyu Qin; Peter Raymond; Laure Resplandy; Judith A. Rosentreter; Hao Shi; Qing Sun; Daniele Tonina; Francesco N. Tubiello; Guido R. van der Werf; Nicolas Vuichard; Junjie Wang; Kelley C. Wells; Luke M. Western; Chris Wilson; Jia Yang; Yuanzhi Yao; Yongfa You; Qing Zhu;Abstract. Nitrous oxide (N2O) is a long-lived potent greenhouse gas and stratospheric ozone-depleting substance that has been accumulating in the atmosphere since the preindustrial period. The mole fraction of atmospheric N2O has increased by nearly 25 % from 270 ppb (parts per billion) in 1750 to 336 ppb in 2022, with the fastest annual growth rate since 1980 of more than 1.3 ppb yr−1 in both 2020 and 2021. According to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change (IPCC AR6), the relative contribution of N2O to the total enhanced effective radiative forcing of greenhouse gases was 6.4 % for 1750–2022. As a core component of our global greenhouse gas assessments coordinated by the Global Carbon Project (GCP), our global N2O budget incorporates both natural and anthropogenic sources and sinks and accounts for the interactions between nitrogen additions and the biogeochemical processes that control N2O emissions. We use bottom-up (BU: inventory, statistical extrapolation of flux measurements, and process-based land and ocean modeling) and top-down (TD: atmospheric measurement-based inversion) approaches. We provide a comprehensive quantification of global N2O sources and sinks in 21 natural and anthropogenic categories in 18 regions between 1980 and 2020. We estimate that total annual anthropogenic N2O emissions have increased 40 % (or 1.9 Tg N yr−1) in the past 4 decades (1980–2020). Direct agricultural emissions in 2020 (3.9 Tg N yr−1, best estimate) represent the large majority of anthropogenic emissions, followed by other direct anthropogenic sources, including fossil fuel and industry, waste and wastewater, and biomass burning (2.1 Tg N yr−1), and indirect anthropogenic sources (1.3 Tg N yr−1) . For the year 2020, our best estimate of total BU emissions for natural and anthropogenic sources was 18.5 (lower–upper bounds: 10.6–27.0) Tg N yr−1, close to our TD estimate of 17.0 (16.6–17.4) Tg N yr−1. For the 2010–2019 period, the annual BU decadal-average emissions for both natural and anthropogenic sources were 18.2 (10.6–25.9) Tg N yr−1 and TD emissions were 17.4 (15.8–19.20) Tg N yr−1. The once top emitter Europe has reduced its emissions by 31 % since the 1980s, while those of emerging economies have grown, making China the top emitter since the 2010s. The observed atmospheric N2O concentrations in recent years have exceeded projected levels under all scenarios in the Coupled Model Intercomparison Project Phase 6 (CMIP6), underscoring the importance of reducing anthropogenic N2O emissions. To evaluate mitigation efforts and contribute to the Global Stocktake of the United Nations Framework Convention on Climate Change, we propose the establishment of a global network for monitoring and modeling N2O from the surface through to the stratosphere. The data presented in this work can be downloaded from https://doi.org/10.18160/RQ8P-2Z4R (Tian et al., 2023).
OceanRep arrow_drop_down Earth System Science Data (ESSD)Article . 2024 . Peer-reviewedLicense: CC BYData sources: Crossrefhttps://doi.org/10.5194/essd-2...Article . 2023 . Peer-reviewedLicense: CC BYData sources: CrossrefWageningen Staff PublicationsArticle . 2024License: CC BYData sources: Wageningen Staff Publicationsadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 8 citations 8 popularity Average influence Average impulse Top 10% Powered by BIP!
more_vert OceanRep arrow_drop_down Earth System Science Data (ESSD)Article . 2024 . Peer-reviewedLicense: CC BYData sources: Crossrefhttps://doi.org/10.5194/essd-2...Article . 2023 . Peer-reviewedLicense: CC BYData sources: CrossrefWageningen Staff PublicationsArticle . 2024License: CC BYData sources: Wageningen Staff Publicationsadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.5194/essd-16-2543-2024&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type , Journal 2017Embargo end date: 01 Jan 2018 United Kingdom, Germany, Germany, Australia, Australia, Germany, Netherlands, SpainPublisher:Copernicus GmbH Funded by:EC | QUINCY, EC | LUC4C, EC | IMBALANCE-P +9 projectsEC| QUINCY ,EC| LUC4C ,EC| IMBALANCE-P ,EC| CRESCENDO ,RCN| Jordsystem-modellering av klimaforandringer i den antroposene tidsalder; Earth system modelling of climate Variations in the Anthropocene ,EC| RINGO ,EC| FIBER ,RCN| CICEP-Strategic Challenges in International Climate and Energy Policy ,NWO| The distribution and evolution of inert and reactant scalars: from the atmospheric boundary layer to continental scales ,SNSF| Geschichte der Bausteinbearbeitung, insbesondere in der westlichen Schweiz ,RCN| Integrated Carbon Observation System (ICOS)-Norway and Ocean Thematic Centre (OTC) ,EC| HELIXBronte Tilbrook; Bronte Tilbrook; Jessica N. Cross; Guido R. van der Werf; Yukihiro Nojiri; Denis Pierrot; Denis Pierrot; Arne Körtzinger; Andrew J. Watson; Nathalie Lefèvre; Nicolas Metzl; Andrew Lenton; Andrew Lenton; X. Antonio Padin; David R. Munro; Andrew C. Manning; Philippe Ciais; Leticia Barbero; Leticia Barbero; Kees Klein Goldewijk; Kees Klein Goldewijk; Markus Kautz; Ivan D. Lima; Benjamin Poulter; Benjamin Poulter; Sebastian Lienert; Sebastian Lienert; Pieter P. Tans; Oliver Andrews; George C. Hurtt; Janet J. Reimer; Ingunn Skjelvan; Peter Landschützer; Francesco N. Tubiello; Thomas A. Boden; Anthony P. Walker; Pedro M. S. Monteiro; Kim I. Currie; Robert B. Jackson; Vivek K. Arora; Meike Becker; Meike Becker; Benjamin D. Stocker; Nicolas Vuichard; Tatiana Ilyina; Richard A. Houghton; Stephen Sitch; Sönke Zaehle; Christian Rödenbeck; Dorothee C. E. Bakker; Judith Hauck; Jörg Schwinger; Julia E. M. S. Nabel; Jan Ivar Korsbakken; Frédéric Chevallier; Andy Wiltshire; Ralph F. Keeling; Catherine E Cosca; Thomas Gasser; Ingrid T. van der Laan-Luijkx; Richard Betts; Richard Betts; Shin-Ichiro Nakaoka; Ian Harris; Robbie M. Andrew; Roland Séférian; Pierre Friedlingstein; Steven van Heuven; Christopher W. Hunt; Laurent Bopp; Dan Zhu; Julia Pongratz; Gregor Rehder; Louise Chini; Nicolas Viovy; Frank J. Millero; Etsushi Kato; Benjamin Pfeil; Benjamin Pfeil; Glen P. Peters; Josep G. Canadell; Anna Peregon; Atul K. Jain; Corinne Le Quéré; Danica Lombardozzi; Vanessa Haverd; Hanqin Tian;Abstract. Accurate assessment of anthropogenic carbon dioxide (CO2) emissions and their redistribution among the atmosphere, ocean, and terrestrial biosphere – the "global carbon budget" – is important to better understand the global carbon cycle, support the development of climate policies, and project future climate change. Here we describe data sets and methodology to quantify the five major components of the global carbon budget and their uncertainties. CO2 emissions from fossil fuels and industry (EFF) are based on energy statistics and cement production data, respectively, while emissions from land-use change (ELUC), mainly deforestation, are based on land-cover change data and bookkeeping models. The global atmospheric CO2 concentration is measured directly and its rate of growth (GATM) is computed from the annual changes in concentration. The ocean CO2 sink (SOCEAN) and terrestrial CO2 sink (SLAND) are estimated with global process models constrained by observations. The resulting carbon budget imbalance (BIM), the difference between the estimated total emissions and the estimated changes in the atmosphere, ocean, and terrestrial biosphere, is a measure of our imperfect data and understanding of the contemporary carbon cycle. All uncertainties are reported as ±1σ. For the last decade available (2007–2016), EFF was 9.4 ± 0.5 GtC yr−1, ELUC 1.3 ± 0.7 GtC yr−1, GATM 4.7 ± 0.1 GtC yr−1, SOCEAN 2.4 ± 0.5 GtC yr−1, and SLAND 3.0 ± 0.8 GtC yr−1, with a budget imbalance BIM of 0.6 GtC yr−1 indicating overestimated emissions and/or underestimated sinks. For year 2016 alone, the growth in EFF was approximately zero and emissions remained at 9.9 ± 0.5 GtC yr−1. Also for 2016, ELUC was 1.3 ± 0.7 GtC yr−1, GATM was 6.1 ± 0.2 GtC yr−1, SOCEAN was 2.6 ± 0.5 GtC yr−1 and SLAND was 2.7 ± 1.0 GtC yr−1, with a small BIM of −0.3 GtC. GATM continued to be higher in 2016 compared to the past decade (2007–2016), reflecting in part the higher fossil emissions and smaller SLAND for that year consistent with El Niño conditions. The global atmospheric CO2 concentration reached 402.8 ± 0.1 ppm averaged over 2016. For 2017, preliminary data indicate a renewed growth in EFF of +2.0 % (range of 0.8 % to 3.0 %) based on national emissions projections for China, USA, and India, and projections of Gross Domestic Product corrected for recent changes in the carbon intensity of the economy for the rest of the world. For 2017, initial data indicate an increase in atmospheric CO2 concentration of around 5.3 GtC (2.5 ppm), attributed to a combination of increasing emissions and receding El Niño conditions. This living data update documents changes in the methods and data sets used in this new global carbon budget compared with previous publications of this data set (Le Quéré et al., 2016; 2015b; 2015a; 2014; 2013). All results presented here can be downloaded from https://doi.org/10.18160/GCP-2017.
OceanRep arrow_drop_down KITopen (Karlsruhe Institute of Technologie)Article . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Woods Hole Open Access ServerArticle . 2018License: CC BYFull-Text: https://doi.org/10.18160/GCP-2017Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2017 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science DataOther literature type . 2018Data sources: DANS (Data Archiving and Networked Services)DANS (Data Archiving and Networked Services)Other literature type . 2018Data sources: DANS (Data Archiving and Networked Services)Recolector de Ciencia Abierta, RECOLECTAArticle . 2018 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTAWageningen Staff PublicationsArticle . 2018License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2017Data sources: Electronic Publication Information CenterElectronic Publication Information CenterArticle . 2018Data sources: Electronic Publication Information CenterEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedData sources: European Union Open Data PortalUniversity of Bristol: Bristol ResearchArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)University of Tasmania: UTas ePrintsArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 990 citations 990 popularity Top 0.1% influence Top 1% impulse Top 0.01% Powered by BIP!
visibility 24visibility views 24 download downloads 76 Powered bymore_vert OceanRep arrow_drop_down KITopen (Karlsruhe Institute of Technologie)Article . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Woods Hole Open Access ServerArticle . 2018License: CC BYFull-Text: https://doi.org/10.18160/GCP-2017Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2017 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science DataOther literature type . 2018Data sources: DANS (Data Archiving and Networked Services)DANS (Data Archiving and Networked Services)Other literature type . 2018Data sources: DANS (Data Archiving and Networked Services)Recolector de Ciencia Abierta, RECOLECTAArticle . 2018 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTAWageningen Staff PublicationsArticle . 2018License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2017Data sources: Electronic Publication Information CenterElectronic Publication Information CenterArticle . 2018Data sources: Electronic Publication Information CenterEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedData sources: European Union Open Data PortalUniversity of Bristol: Bristol ResearchArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)University of Tasmania: UTas ePrintsArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.5194/essd-2017-123&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type , Journal , Preprint 2020Embargo end date: 11 Dec 2020 United Kingdom, Germany, Germany, Switzerland, Australia, France, Norway, United Kingdom, Australia, Norway, Netherlands, GermanyPublisher:Copernicus GmbH Funded by:UKRI | Ocean Regulation of Clima..., RCN | Integrated Carbon Observa..., UKRI | Southern OceaN optimal Ap... +6 projectsUKRI| Ocean Regulation of Climate by Heat and Carbon Sequestration and Transports (ORCHESTRA) ,RCN| Integrated Carbon Observation System (ICOS)-Norway and Ocean Thematic Centre (OTC) ,UKRI| Southern OceaN optimal Approach To Assess the carbon state, variability and climatic drivers (SONATA) ,UKRI| NCEO LTS-S ,RCN| Infrastructure for Norwegian Earth System modelling ,NSF| INFEWS: U.S.-China: Integrated systems modeling for sustainable FEW nexus under multi-factor global changes: Innovative comparison between Yellow River and Mississippi River Basins ,UKRI| Marine LTSS: Climate Linked Atlantic Sector Science ,EC| CRESCENDO ,SNSF| Climate and Environmental Physics: Modeling Global Biogeochemical Cycles in the Earth System (bgcCEP)P. Friedlingstein; P. Friedlingstein; M. O'Sullivan; M. W. Jones; R. M. Andrew; J. Hauck; A. Olsen; A. Olsen; G. P. Peters; W. Peters; W. Peters; J. Pongratz; J. Pongratz; S. Sitch; C. Le Quéré; J. G. Canadell; P. Ciais; R. B. Jackson; S. Alin; L. E. O. C. Aragão; L. E. O. C. Aragão; A. Arneth; V. Arora; N. R. Bates; N. R. Bates; M. Becker; M. Becker; A. Benoit-Cattin; H. C. Bittig; L. Bopp; S. Bultan; N. Chandra; N. Chandra; F. Chevallier; L. P. Chini; W. Evans; L. Florentie; P. M. Forster; T. Gasser; M. Gehlen; D. Gilfillan; T. Gkritzalis; L. Gregor; N. Gruber; I. Harris; K. Hartung; K. Hartung; V. Haverd; R. A. Houghton; T. Ilyina; A. K. Jain; E. Joetzjer; K. Kadono; E. Kato; V. Kitidis; J. I. Korsbakken; P. Landschützer; N. Lefèvre; A. Lenton; S. Lienert; Z. Liu; D. Lombardozzi; G. Marland; G. Marland; N. Metzl; D. R. Munro; D. R. Munro; J. E. M. S. Nabel; S.-I. Nakaoka; Y. Niwa; Y. Niwa; K. O'Brien; K. O'Brien; T. Ono; P. I. Palmer; P. I. Palmer; D. Pierrot; B. Poulter; L. Resplandy; E. Robertson; C. Rödenbeck; J. Schwinger; J. Schwinger; R. Séférian; I. Skjelvan; I. Skjelvan; A. J. P. Smith; A. J. Sutton; T. Tanhua; P. P. Tans; H. Tian; B. Tilbrook; B. Tilbrook; G. van der Werf; N. Vuichard; A. P. Walker; R. Wanninkhof; A. J. Watson; D. Willis; A. J. Wiltshire; W. Yuan; X. Yue; S. Zaehle;Abstract. Accurate assessment of anthropogenic carbon dioxide (CO2) emissions and their redistribution among the atmosphere, ocean, and terrestrial biosphere in a changing climate – the “global carbon budget” – is important to better understand the global carbon cycle, support the development of climate policies, and project future climate change. Here we describe and synthesize data sets and methodology to quantify the five major components of the global carbon budget and their uncertainties. Fossil CO2 emissions (EFOS) are based on energy statistics and cement production data, while emissions from land-use change (ELUC), mainly deforestation, are based on land use and land-use change data and bookkeeping models. Atmospheric CO2 concentration is measured directly and its growth rate (GATM) is computed from the annual changes in concentration. The ocean CO2 sink (SOCEAN) and terrestrial CO2 sink (SLAND) are estimated with global process models constrained by observations. The resulting carbon budget imbalance (BIM), the difference between the estimated total emissions and the estimated changes in the atmosphere, ocean, and terrestrial biosphere, is a measure of imperfect data and understanding of the contemporary carbon cycle. All uncertainties are reported as ±1σ. For the last decade available (2010–2019), EFOS was 9.6 ± 0.5 GtC yr−1 excluding the cement carbonation sink (9.4 ± 0.5 GtC yr−1 when the cement carbonation sink is included), and ELUC was 1.6 ± 0.7 GtC yr−1. For the same decade, GATM was 5.1 ± 0.02 GtC yr−1 (2.4 ± 0.01 ppm yr−1), SOCEAN 2.5 ± 0.6 GtC yr−1, and SLAND 3.4 ± 0.9 GtC yr−1, with a budget imbalance BIM of −0.1 GtC yr−1 indicating a near balance between estimated sources and sinks over the last decade. For the year 2019 alone, the growth in EFOS was only about 0.1 % with fossil emissions increasing to 9.9 ± 0.5 GtC yr−1 excluding the cement carbonation sink (9.7 ± 0.5 GtC yr−1 when cement carbonation sink is included), and ELUC was 1.8 ± 0.7 GtC yr−1, for total anthropogenic CO2 emissions of 11.5 ± 0.9 GtC yr−1 (42.2 ± 3.3 GtCO2). Also for 2019, GATM was 5.4 ± 0.2 GtC yr−1 (2.5 ± 0.1 ppm yr−1), SOCEAN was 2.6 ± 0.6 GtC yr−1, and SLAND was 3.1 ± 1.2 GtC yr−1, with a BIM of 0.3 GtC. The global atmospheric CO2 concentration reached 409.85 ± 0.1 ppm averaged over 2019. Preliminary data for 2020, accounting for the COVID-19-induced changes in emissions, suggest a decrease in EFOS relative to 2019 of about −7 % (median estimate) based on individual estimates from four studies of −6 %, −7 %, −7 % (−3 % to −11 %), and −13 %. Overall, the mean and trend in the components of the global carbon budget are consistently estimated over the period 1959–2019, but discrepancies of up to 1 GtC yr−1 persist for the representation of semi-decadal variability in CO2 fluxes. Comparison of estimates from diverse approaches and observations shows (1) no consensus in the mean and trend in land-use change emissions over the last decade, (2) a persistent low agreement between the different methods on the magnitude of the land CO2 flux in the northern extra-tropics, and (3) an apparent discrepancy between the different methods for the ocean sink outside the tropics, particularly in the Southern Ocean. This living data update documents changes in the methods and data sets used in this new global carbon budget and the progress in understanding of the global carbon cycle compared with previous publications of this data set (Friedlingstein et al., 2019; Le Quéré et al., 2018b, a, 2016, 2015b, a, 2014, 2013). The data presented in this work are available at https://doi.org/10.18160/gcp-2020 (Friedlingstein et al., 2020).
CORE arrow_drop_down NORCE vitenarkiv (Norwegian Research Centre)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2723621Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Bergen: Bergen Open Research Archive (BORA-UiB)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2738463Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefMémoires en Sciences de l'Information et de la CommunicationPreprint . 2020Wageningen Staff PublicationsArticle . 2020License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2020Data sources: Electronic Publication Information CenterUniversity of Tasmania: UTas ePrintsArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 2K citations 1,618 popularity Top 0.01% influence Top 0.1% impulse Top 0.01% Powered by BIP!
more_vert CORE arrow_drop_down NORCE vitenarkiv (Norwegian Research Centre)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2723621Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Bergen: Bergen Open Research Archive (BORA-UiB)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2738463Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefMémoires en Sciences de l'Information et de la CommunicationPreprint . 2020Wageningen Staff PublicationsArticle . 2020License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2020Data sources: Electronic Publication Information CenterUniversity of Tasmania: UTas ePrintsArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.5194/essd-2020-286&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2009 FrancePublisher:American Chemical Society (ACS) Authors: Vuichard, Nicolas; Ciais, Philippe; Wolf, Adam;doi: 10.1021/es901652t
pmid: 20028070
Although the CO(2) mitigation potential of biofuels has been studied by extrapolation of small-scale studies, few estimates exist of the net regional-scale carbon balance implications of biofuel cultivations programs, either growing conventional biofuel crops or applying new advanced technologies. Here we used a spatially distributed process-driven model over the 20 Mha of recently abandoned agricultural lands of the Former Soviet Union to quantify the GHG mitigation by biofuel production from Low Input/High Diversity (LIHD) grass-legume prairies and to compare this GHG mitigation with the one of soil C sequestration as it currently occurs. LIHD has recently received a lot of attention as an emerging opportunity to produce biofuels over marginal lands leading to a good energy efficiency with minimal adverse consequences on food security and ecosystem services. We found that, depending on the time horizon over which one seeks to maximize the GHG benefit, the optimal time for implementing biofuel production shifts from "never" (short-term horizon) to "as soon as possible" (longer-term horizon). These results highlight the importance of reaching agreement a priori on the target time interval during which biofuels are expected to play a role within the global energy system, to avoid deploying biofuel technology over a time interval for which it has a detrimental impact on the GHG mitigation objective. The window of opportunity for growing LIHD also stresses the need to reduce uncertainties in soil C inputs, turnover, and soil organic matter stability under current and future climate and management practices.
INRIA a CCSD electro... arrow_drop_down INRIA a CCSD electronic archive serverArticle . 2009Data sources: INRIA a CCSD electronic archive serverCIRAD: HAL (Agricultural Research for Development)Article . 2009Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess Routesbronze 28 citations 28 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert INRIA a CCSD electro... arrow_drop_down INRIA a CCSD electronic archive serverArticle . 2009Data sources: INRIA a CCSD electronic archive serverCIRAD: HAL (Agricultural Research for Development)Article . 2009Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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description Publicationkeyboard_double_arrow_right Article , Other literature type 2023 Netherlands, GermanyPublisher:Copernicus GmbH Funded by:EC | GREEN GODS, , EC | ESM2025 +10 projectsEC| GREEN GODS ,[no funder available] ,EC| ESM2025 ,NSF| ACO: An Open CI Ecosystem to Advance Scientific Discovery (OpenCI) ,NSF| Track 1: ACCESS Resource Allocations Marketplace and Platform Services (RAMPS) ,SNSF| Climate and Environmental Physics: Modeling Global Biogeochemical Cycles in the Earth System 2021-2025 (bgcCEP20) ,NSF| INFEWS: U.S.-China: Integrated systems modeling for sustainable FEW nexus under multi-factor global changes: Innovative comparison between Yellow River and Mississippi River Basins ,UKRI| The UK Earth system modelling project ,NSF| NRT: Addressing resiliency to climate-related hazards and disasters through data-informed decision making ,NSF| Track 2: Customized Multi-tier Assistance, Training, and Computational Help (MATCH) for End User ACCESS to CI ,NSF| Track 3: COre National Ecosystem for CyberinfrasTructure (CONECT) ,UKRI| NCEO LTS-S ,NSF| Track 4: Advanced CI Coordination Ecosystem: Monitoring and Measurement ServicesHanqin Tian; Naiqing Pan; Rona L. Thompson; Josep G. Canadell; P. Suntharalingam; Pierre Regnier; Eric A. Davidson; Michael J. Prather; Philippe Ciais; Marilena Muntean; Shufen Pan; Wilfried Winiwarter; Sönke Zaehle; Feng Zhou; Robert B. Jackson; Hermann W. Bange; Sarah Berthet; Zihao Bian; Daniele Bianchi; Lex Bouwman; Erik T. Buitenhuis; G. S. Dutton; Minpeng Hu; Akihiko Ito; Atul K. Jain; Aurich Jeltsch‐Thömmes; Fortunat Joos; Sian Kou‐Giesbrecht; P. B. Krummel; Lan X; Angela Landolfi; Ronny Lauerwald; Ya Li; Chaoqun Lü; Taylor Maavara; Manfredi Manizza; Dylan B. Millet; Jens Mühle; Prabir K. Patra; Glen P. Peters; Xiaoyu Qin; Peter Raymond; Laure Resplandy; Judith A. Rosentreter; Hao Shi; Qing Sun; Daniele Tonina; Francesco N. Tubiello; Guido R. van der Werf; Nicolas Vuichard; Junjie Wang; Kelley C. Wells; Luke M. Western; Chris Wilson; Jia Yang; Yuanzhi Yao; Yongfa You; Qing Zhu;Abstract. Nitrous oxide (N2O) is a long-lived potent greenhouse gas and stratospheric ozone-depleting substance that has been accumulating in the atmosphere since the preindustrial period. The mole fraction of atmospheric N2O has increased by nearly 25 % from 270 ppb (parts per billion) in 1750 to 336 ppb in 2022, with the fastest annual growth rate since 1980 of more than 1.3 ppb yr−1 in both 2020 and 2021. According to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change (IPCC AR6), the relative contribution of N2O to the total enhanced effective radiative forcing of greenhouse gases was 6.4 % for 1750–2022. As a core component of our global greenhouse gas assessments coordinated by the Global Carbon Project (GCP), our global N2O budget incorporates both natural and anthropogenic sources and sinks and accounts for the interactions between nitrogen additions and the biogeochemical processes that control N2O emissions. We use bottom-up (BU: inventory, statistical extrapolation of flux measurements, and process-based land and ocean modeling) and top-down (TD: atmospheric measurement-based inversion) approaches. We provide a comprehensive quantification of global N2O sources and sinks in 21 natural and anthropogenic categories in 18 regions between 1980 and 2020. We estimate that total annual anthropogenic N2O emissions have increased 40 % (or 1.9 Tg N yr−1) in the past 4 decades (1980–2020). Direct agricultural emissions in 2020 (3.9 Tg N yr−1, best estimate) represent the large majority of anthropogenic emissions, followed by other direct anthropogenic sources, including fossil fuel and industry, waste and wastewater, and biomass burning (2.1 Tg N yr−1), and indirect anthropogenic sources (1.3 Tg N yr−1) . For the year 2020, our best estimate of total BU emissions for natural and anthropogenic sources was 18.5 (lower–upper bounds: 10.6–27.0) Tg N yr−1, close to our TD estimate of 17.0 (16.6–17.4) Tg N yr−1. For the 2010–2019 period, the annual BU decadal-average emissions for both natural and anthropogenic sources were 18.2 (10.6–25.9) Tg N yr−1 and TD emissions were 17.4 (15.8–19.20) Tg N yr−1. The once top emitter Europe has reduced its emissions by 31 % since the 1980s, while those of emerging economies have grown, making China the top emitter since the 2010s. The observed atmospheric N2O concentrations in recent years have exceeded projected levels under all scenarios in the Coupled Model Intercomparison Project Phase 6 (CMIP6), underscoring the importance of reducing anthropogenic N2O emissions. To evaluate mitigation efforts and contribute to the Global Stocktake of the United Nations Framework Convention on Climate Change, we propose the establishment of a global network for monitoring and modeling N2O from the surface through to the stratosphere. The data presented in this work can be downloaded from https://doi.org/10.18160/RQ8P-2Z4R (Tian et al., 2023).
OceanRep arrow_drop_down Earth System Science Data (ESSD)Article . 2024 . Peer-reviewedLicense: CC BYData sources: Crossrefhttps://doi.org/10.5194/essd-2...Article . 2023 . Peer-reviewedLicense: CC BYData sources: CrossrefWageningen Staff PublicationsArticle . 2024License: CC BYData sources: Wageningen Staff Publicationsadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 8 citations 8 popularity Average influence Average impulse Top 10% Powered by BIP!
more_vert OceanRep arrow_drop_down Earth System Science Data (ESSD)Article . 2024 . Peer-reviewedLicense: CC BYData sources: Crossrefhttps://doi.org/10.5194/essd-2...Article . 2023 . Peer-reviewedLicense: CC BYData sources: CrossrefWageningen Staff PublicationsArticle . 2024License: CC BYData sources: Wageningen Staff Publicationsadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type , Journal 2017Embargo end date: 01 Jan 2018 United Kingdom, Germany, Germany, Australia, Australia, Germany, Netherlands, SpainPublisher:Copernicus GmbH Funded by:EC | QUINCY, EC | LUC4C, EC | IMBALANCE-P +9 projectsEC| QUINCY ,EC| LUC4C ,EC| IMBALANCE-P ,EC| CRESCENDO ,RCN| Jordsystem-modellering av klimaforandringer i den antroposene tidsalder; Earth system modelling of climate Variations in the Anthropocene ,EC| RINGO ,EC| FIBER ,RCN| CICEP-Strategic Challenges in International Climate and Energy Policy ,NWO| The distribution and evolution of inert and reactant scalars: from the atmospheric boundary layer to continental scales ,SNSF| Geschichte der Bausteinbearbeitung, insbesondere in der westlichen Schweiz ,RCN| Integrated Carbon Observation System (ICOS)-Norway and Ocean Thematic Centre (OTC) ,EC| HELIXBronte Tilbrook; Bronte Tilbrook; Jessica N. Cross; Guido R. van der Werf; Yukihiro Nojiri; Denis Pierrot; Denis Pierrot; Arne Körtzinger; Andrew J. Watson; Nathalie Lefèvre; Nicolas Metzl; Andrew Lenton; Andrew Lenton; X. Antonio Padin; David R. Munro; Andrew C. Manning; Philippe Ciais; Leticia Barbero; Leticia Barbero; Kees Klein Goldewijk; Kees Klein Goldewijk; Markus Kautz; Ivan D. Lima; Benjamin Poulter; Benjamin Poulter; Sebastian Lienert; Sebastian Lienert; Pieter P. Tans; Oliver Andrews; George C. Hurtt; Janet J. Reimer; Ingunn Skjelvan; Peter Landschützer; Francesco N. Tubiello; Thomas A. Boden; Anthony P. Walker; Pedro M. S. Monteiro; Kim I. Currie; Robert B. Jackson; Vivek K. Arora; Meike Becker; Meike Becker; Benjamin D. Stocker; Nicolas Vuichard; Tatiana Ilyina; Richard A. Houghton; Stephen Sitch; Sönke Zaehle; Christian Rödenbeck; Dorothee C. E. Bakker; Judith Hauck; Jörg Schwinger; Julia E. M. S. Nabel; Jan Ivar Korsbakken; Frédéric Chevallier; Andy Wiltshire; Ralph F. Keeling; Catherine E Cosca; Thomas Gasser; Ingrid T. van der Laan-Luijkx; Richard Betts; Richard Betts; Shin-Ichiro Nakaoka; Ian Harris; Robbie M. Andrew; Roland Séférian; Pierre Friedlingstein; Steven van Heuven; Christopher W. Hunt; Laurent Bopp; Dan Zhu; Julia Pongratz; Gregor Rehder; Louise Chini; Nicolas Viovy; Frank J. Millero; Etsushi Kato; Benjamin Pfeil; Benjamin Pfeil; Glen P. Peters; Josep G. Canadell; Anna Peregon; Atul K. Jain; Corinne Le Quéré; Danica Lombardozzi; Vanessa Haverd; Hanqin Tian;Abstract. Accurate assessment of anthropogenic carbon dioxide (CO2) emissions and their redistribution among the atmosphere, ocean, and terrestrial biosphere – the "global carbon budget" – is important to better understand the global carbon cycle, support the development of climate policies, and project future climate change. Here we describe data sets and methodology to quantify the five major components of the global carbon budget and their uncertainties. CO2 emissions from fossil fuels and industry (EFF) are based on energy statistics and cement production data, respectively, while emissions from land-use change (ELUC), mainly deforestation, are based on land-cover change data and bookkeeping models. The global atmospheric CO2 concentration is measured directly and its rate of growth (GATM) is computed from the annual changes in concentration. The ocean CO2 sink (SOCEAN) and terrestrial CO2 sink (SLAND) are estimated with global process models constrained by observations. The resulting carbon budget imbalance (BIM), the difference between the estimated total emissions and the estimated changes in the atmosphere, ocean, and terrestrial biosphere, is a measure of our imperfect data and understanding of the contemporary carbon cycle. All uncertainties are reported as ±1σ. For the last decade available (2007–2016), EFF was 9.4 ± 0.5 GtC yr−1, ELUC 1.3 ± 0.7 GtC yr−1, GATM 4.7 ± 0.1 GtC yr−1, SOCEAN 2.4 ± 0.5 GtC yr−1, and SLAND 3.0 ± 0.8 GtC yr−1, with a budget imbalance BIM of 0.6 GtC yr−1 indicating overestimated emissions and/or underestimated sinks. For year 2016 alone, the growth in EFF was approximately zero and emissions remained at 9.9 ± 0.5 GtC yr−1. Also for 2016, ELUC was 1.3 ± 0.7 GtC yr−1, GATM was 6.1 ± 0.2 GtC yr−1, SOCEAN was 2.6 ± 0.5 GtC yr−1 and SLAND was 2.7 ± 1.0 GtC yr−1, with a small BIM of −0.3 GtC. GATM continued to be higher in 2016 compared to the past decade (2007–2016), reflecting in part the higher fossil emissions and smaller SLAND for that year consistent with El Niño conditions. The global atmospheric CO2 concentration reached 402.8 ± 0.1 ppm averaged over 2016. For 2017, preliminary data indicate a renewed growth in EFF of +2.0 % (range of 0.8 % to 3.0 %) based on national emissions projections for China, USA, and India, and projections of Gross Domestic Product corrected for recent changes in the carbon intensity of the economy for the rest of the world. For 2017, initial data indicate an increase in atmospheric CO2 concentration of around 5.3 GtC (2.5 ppm), attributed to a combination of increasing emissions and receding El Niño conditions. This living data update documents changes in the methods and data sets used in this new global carbon budget compared with previous publications of this data set (Le Quéré et al., 2016; 2015b; 2015a; 2014; 2013). All results presented here can be downloaded from https://doi.org/10.18160/GCP-2017.
OceanRep arrow_drop_down KITopen (Karlsruhe Institute of Technologie)Article . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Woods Hole Open Access ServerArticle . 2018License: CC BYFull-Text: https://doi.org/10.18160/GCP-2017Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2017 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science DataOther literature type . 2018Data sources: DANS (Data Archiving and Networked Services)DANS (Data Archiving and Networked Services)Other literature type . 2018Data sources: DANS (Data Archiving and Networked Services)Recolector de Ciencia Abierta, RECOLECTAArticle . 2018 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTAWageningen Staff PublicationsArticle . 2018License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2017Data sources: Electronic Publication Information CenterElectronic Publication Information CenterArticle . 2018Data sources: Electronic Publication Information CenterEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedData sources: European Union Open Data PortalUniversity of Bristol: Bristol ResearchArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)University of Tasmania: UTas ePrintsArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 990 citations 990 popularity Top 0.1% influence Top 1% impulse Top 0.01% Powered by BIP!
visibility 24visibility views 24 download downloads 76 Powered bymore_vert OceanRep arrow_drop_down KITopen (Karlsruhe Institute of Technologie)Article . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Woods Hole Open Access ServerArticle . 2018License: CC BYFull-Text: https://doi.org/10.18160/GCP-2017Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2017 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science DataOther literature type . 2018Data sources: DANS (Data Archiving and Networked Services)DANS (Data Archiving and Networked Services)Other literature type . 2018Data sources: DANS (Data Archiving and Networked Services)Recolector de Ciencia Abierta, RECOLECTAArticle . 2018 . Peer-reviewedData sources: Recolector de Ciencia Abierta, RECOLECTAWageningen Staff PublicationsArticle . 2018License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2017Data sources: Electronic Publication Information CenterElectronic Publication Information CenterArticle . 2018Data sources: Electronic Publication Information CenterEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedData sources: European Union Open Data PortalUniversity of Bristol: Bristol ResearchArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)University of Tasmania: UTas ePrintsArticle . 2018Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type , Journal , Preprint 2020Embargo end date: 11 Dec 2020 United Kingdom, Germany, Germany, Switzerland, Australia, France, Norway, United Kingdom, Australia, Norway, Netherlands, GermanyPublisher:Copernicus GmbH Funded by:UKRI | Ocean Regulation of Clima..., RCN | Integrated Carbon Observa..., UKRI | Southern OceaN optimal Ap... +6 projectsUKRI| Ocean Regulation of Climate by Heat and Carbon Sequestration and Transports (ORCHESTRA) ,RCN| Integrated Carbon Observation System (ICOS)-Norway and Ocean Thematic Centre (OTC) ,UKRI| Southern OceaN optimal Approach To Assess the carbon state, variability and climatic drivers (SONATA) ,UKRI| NCEO LTS-S ,RCN| Infrastructure for Norwegian Earth System modelling ,NSF| INFEWS: U.S.-China: Integrated systems modeling for sustainable FEW nexus under multi-factor global changes: Innovative comparison between Yellow River and Mississippi River Basins ,UKRI| Marine LTSS: Climate Linked Atlantic Sector Science ,EC| CRESCENDO ,SNSF| Climate and Environmental Physics: Modeling Global Biogeochemical Cycles in the Earth System (bgcCEP)P. Friedlingstein; P. Friedlingstein; M. O'Sullivan; M. W. Jones; R. M. Andrew; J. Hauck; A. Olsen; A. Olsen; G. P. Peters; W. Peters; W. Peters; J. Pongratz; J. Pongratz; S. Sitch; C. Le Quéré; J. G. Canadell; P. Ciais; R. B. Jackson; S. Alin; L. E. O. C. Aragão; L. E. O. C. Aragão; A. Arneth; V. Arora; N. R. Bates; N. R. Bates; M. Becker; M. Becker; A. Benoit-Cattin; H. C. Bittig; L. Bopp; S. Bultan; N. Chandra; N. Chandra; F. Chevallier; L. P. Chini; W. Evans; L. Florentie; P. M. Forster; T. Gasser; M. Gehlen; D. Gilfillan; T. Gkritzalis; L. Gregor; N. Gruber; I. Harris; K. Hartung; K. Hartung; V. Haverd; R. A. Houghton; T. Ilyina; A. K. Jain; E. Joetzjer; K. Kadono; E. Kato; V. Kitidis; J. I. Korsbakken; P. Landschützer; N. Lefèvre; A. Lenton; S. Lienert; Z. Liu; D. Lombardozzi; G. Marland; G. Marland; N. Metzl; D. R. Munro; D. R. Munro; J. E. M. S. Nabel; S.-I. Nakaoka; Y. Niwa; Y. Niwa; K. O'Brien; K. O'Brien; T. Ono; P. I. Palmer; P. I. Palmer; D. Pierrot; B. Poulter; L. Resplandy; E. Robertson; C. Rödenbeck; J. Schwinger; J. Schwinger; R. Séférian; I. Skjelvan; I. Skjelvan; A. J. P. Smith; A. J. Sutton; T. Tanhua; P. P. Tans; H. Tian; B. Tilbrook; B. Tilbrook; G. van der Werf; N. Vuichard; A. P. Walker; R. Wanninkhof; A. J. Watson; D. Willis; A. J. Wiltshire; W. Yuan; X. Yue; S. Zaehle;Abstract. Accurate assessment of anthropogenic carbon dioxide (CO2) emissions and their redistribution among the atmosphere, ocean, and terrestrial biosphere in a changing climate – the “global carbon budget” – is important to better understand the global carbon cycle, support the development of climate policies, and project future climate change. Here we describe and synthesize data sets and methodology to quantify the five major components of the global carbon budget and their uncertainties. Fossil CO2 emissions (EFOS) are based on energy statistics and cement production data, while emissions from land-use change (ELUC), mainly deforestation, are based on land use and land-use change data and bookkeeping models. Atmospheric CO2 concentration is measured directly and its growth rate (GATM) is computed from the annual changes in concentration. The ocean CO2 sink (SOCEAN) and terrestrial CO2 sink (SLAND) are estimated with global process models constrained by observations. The resulting carbon budget imbalance (BIM), the difference between the estimated total emissions and the estimated changes in the atmosphere, ocean, and terrestrial biosphere, is a measure of imperfect data and understanding of the contemporary carbon cycle. All uncertainties are reported as ±1σ. For the last decade available (2010–2019), EFOS was 9.6 ± 0.5 GtC yr−1 excluding the cement carbonation sink (9.4 ± 0.5 GtC yr−1 when the cement carbonation sink is included), and ELUC was 1.6 ± 0.7 GtC yr−1. For the same decade, GATM was 5.1 ± 0.02 GtC yr−1 (2.4 ± 0.01 ppm yr−1), SOCEAN 2.5 ± 0.6 GtC yr−1, and SLAND 3.4 ± 0.9 GtC yr−1, with a budget imbalance BIM of −0.1 GtC yr−1 indicating a near balance between estimated sources and sinks over the last decade. For the year 2019 alone, the growth in EFOS was only about 0.1 % with fossil emissions increasing to 9.9 ± 0.5 GtC yr−1 excluding the cement carbonation sink (9.7 ± 0.5 GtC yr−1 when cement carbonation sink is included), and ELUC was 1.8 ± 0.7 GtC yr−1, for total anthropogenic CO2 emissions of 11.5 ± 0.9 GtC yr−1 (42.2 ± 3.3 GtCO2). Also for 2019, GATM was 5.4 ± 0.2 GtC yr−1 (2.5 ± 0.1 ppm yr−1), SOCEAN was 2.6 ± 0.6 GtC yr−1, and SLAND was 3.1 ± 1.2 GtC yr−1, with a BIM of 0.3 GtC. The global atmospheric CO2 concentration reached 409.85 ± 0.1 ppm averaged over 2019. Preliminary data for 2020, accounting for the COVID-19-induced changes in emissions, suggest a decrease in EFOS relative to 2019 of about −7 % (median estimate) based on individual estimates from four studies of −6 %, −7 %, −7 % (−3 % to −11 %), and −13 %. Overall, the mean and trend in the components of the global carbon budget are consistently estimated over the period 1959–2019, but discrepancies of up to 1 GtC yr−1 persist for the representation of semi-decadal variability in CO2 fluxes. Comparison of estimates from diverse approaches and observations shows (1) no consensus in the mean and trend in land-use change emissions over the last decade, (2) a persistent low agreement between the different methods on the magnitude of the land CO2 flux in the northern extra-tropics, and (3) an apparent discrepancy between the different methods for the ocean sink outside the tropics, particularly in the Southern Ocean. This living data update documents changes in the methods and data sets used in this new global carbon budget and the progress in understanding of the global carbon cycle compared with previous publications of this data set (Friedlingstein et al., 2019; Le Quéré et al., 2018b, a, 2016, 2015b, a, 2014, 2013). The data presented in this work are available at https://doi.org/10.18160/gcp-2020 (Friedlingstein et al., 2020).
CORE arrow_drop_down NORCE vitenarkiv (Norwegian Research Centre)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2723621Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Bergen: Bergen Open Research Archive (BORA-UiB)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2738463Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefMémoires en Sciences de l'Information et de la CommunicationPreprint . 2020Wageningen Staff PublicationsArticle . 2020License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2020Data sources: Electronic Publication Information CenterUniversity of Tasmania: UTas ePrintsArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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more_vert CORE arrow_drop_down NORCE vitenarkiv (Norwegian Research Centre)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2723621Data sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2020License: CC BYData sources: Bielefeld Academic Search Engine (BASE)University of Bergen: Bergen Open Research Archive (BORA-UiB)Article . 2020License: CC BYFull-Text: https://hdl.handle.net/11250/2738463Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2021License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2020Full-Text: https://hal.science/hal-03058972Data sources: Bielefeld Academic Search Engine (BASE)https://doi.org/10.5194/essd-2...Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefEarth System Science Data (ESSD)Article . 2020 . Peer-reviewedLicense: CC BYData sources: CrossrefMémoires en Sciences de l'Information et de la CommunicationPreprint . 2020Wageningen Staff PublicationsArticle . 2020License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2020Data sources: Electronic Publication Information CenterUniversity of Tasmania: UTas ePrintsArticle . 2020Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2009 FrancePublisher:American Chemical Society (ACS) Authors: Vuichard, Nicolas; Ciais, Philippe; Wolf, Adam;doi: 10.1021/es901652t
pmid: 20028070
Although the CO(2) mitigation potential of biofuels has been studied by extrapolation of small-scale studies, few estimates exist of the net regional-scale carbon balance implications of biofuel cultivations programs, either growing conventional biofuel crops or applying new advanced technologies. Here we used a spatially distributed process-driven model over the 20 Mha of recently abandoned agricultural lands of the Former Soviet Union to quantify the GHG mitigation by biofuel production from Low Input/High Diversity (LIHD) grass-legume prairies and to compare this GHG mitigation with the one of soil C sequestration as it currently occurs. LIHD has recently received a lot of attention as an emerging opportunity to produce biofuels over marginal lands leading to a good energy efficiency with minimal adverse consequences on food security and ecosystem services. We found that, depending on the time horizon over which one seeks to maximize the GHG benefit, the optimal time for implementing biofuel production shifts from "never" (short-term horizon) to "as soon as possible" (longer-term horizon). These results highlight the importance of reaching agreement a priori on the target time interval during which biofuels are expected to play a role within the global energy system, to avoid deploying biofuel technology over a time interval for which it has a detrimental impact on the GHG mitigation objective. The window of opportunity for growing LIHD also stresses the need to reduce uncertainties in soil C inputs, turnover, and soil organic matter stability under current and future climate and management practices.
INRIA a CCSD electro... arrow_drop_down INRIA a CCSD electronic archive serverArticle . 2009Data sources: INRIA a CCSD electronic archive serverCIRAD: HAL (Agricultural Research for Development)Article . 2009Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1021/es901652t&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess Routesbronze 28 citations 28 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert INRIA a CCSD electro... arrow_drop_down INRIA a CCSD electronic archive serverArticle . 2009Data sources: INRIA a CCSD electronic archive serverCIRAD: HAL (Agricultural Research for Development)Article . 2009Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2009Data sources: Bielefeld Academic Search Engine (BASE)add ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.1021/es901652t&type=result"></script>'); --> </script>
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