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description Publicationkeyboard_double_arrow_right Article 2022Embargo end date: 07 Oct 2022 France, SwitzerlandPublisher:Springer Science and Business Media LLC Funded by:NWO | Biomass-burning radiative..., NWO | Why do global models unde...NWO| Biomass-burning radiative forcing ,NWO| Why do global models underestimate biomass burning aerosol?Authors:Qirui Zhong;
Qirui Zhong
Qirui Zhong in OpenAIRENick Schutgens;
Nick Schutgens
Nick Schutgens in OpenAIREGuido R. van der Werf;
Guido R. van der Werf
Guido R. van der Werf in OpenAIRETwan van Noije;
+16 AuthorsTwan van Noije
Twan van Noije in OpenAIREQirui Zhong;
Qirui Zhong
Qirui Zhong in OpenAIRENick Schutgens;
Nick Schutgens
Nick Schutgens in OpenAIREGuido R. van der Werf;
Guido R. van der Werf
Guido R. van der Werf in OpenAIRETwan van Noije;
Susanne E. Bauer;Twan van Noije
Twan van Noije in OpenAIREKostas Tsigaridis;
Tero Mielonen;Kostas Tsigaridis
Kostas Tsigaridis in OpenAIRERamiro Checa-Garcia;
Ramiro Checa-Garcia
Ramiro Checa-Garcia in OpenAIREDavid Neubauer;
David Neubauer
David Neubauer in OpenAIREZak Kipling;
Alf Kirkevåg; Dirk J. L. Olivié;Zak Kipling
Zak Kipling in OpenAIREHarri Kokkola;
Harri Kokkola
Harri Kokkola in OpenAIREHitoshi Matsui;
Paul Ginoux;Hitoshi Matsui
Hitoshi Matsui in OpenAIREToshihiko Takemura;
Toshihiko Takemura
Toshihiko Takemura in OpenAIREPhilippe Le Sager;
Samuel Rémy; Huisheng Bian;Philippe Le Sager
Philippe Le Sager in OpenAIREMian Chin;
Mian Chin
Mian Chin in OpenAIREAbstractBiomass burning (BB) is a major source of aerosols that remain the most uncertain components of the global radiative forcing. Current global models have great difficulty matching observed aerosol optical depth (AOD) over BB regions. A common solution to address modelled AOD biases is scaling BB emissions. Using the relationship from an ensemble of aerosol models and satellite observations, we show that the bias in aerosol modelling results primarily from incorrect lifetimes and underestimated mass extinction coefficients. In turn, these biases seem to be related to incorrect precipitation and underestimated particle sizes. We further show that boosting BB emissions to correct AOD biases over the source region causes an overestimation of AOD in the outflow from Africa by 48%, leading to a double warming effect compared with when biases are simultaneously addressed for both aforementioned factors. Such deviations are particularly concerning in a warming future with increasing emissions from fires.
Université de Versai... arrow_drop_down Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2022Full-Text: https://insu.hal.science/insu-03993097Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2022Data 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=10.1038/s41467-022-33680-4&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 8 citations 8 popularity Top 10% influence Average impulse Top 10% Powered by BIP!
more_vert Université de Versai... arrow_drop_down Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2022Full-Text: https://insu.hal.science/insu-03993097Data sources: Bielefeld Academic Search Engine (BASE)Institut national des sciences de l'Univers: HAL-INSUArticle . 2022Data 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=10.1038/s41467-022-33680-4&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2018Publisher:Elsevier BV Authors:Guido R. van der Werf;
Guido R. van der Werf
Guido R. van der Werf in OpenAIREJurgen van Hal;
Richard S. P. van Logtestijn; Weiwei Zhao; +1 AuthorsJurgen van Hal
Jurgen van Hal in OpenAIREGuido R. van der Werf;
Guido R. van der Werf
Guido R. van der Werf in OpenAIREJurgen van Hal;
Richard S. P. van Logtestijn; Weiwei Zhao; Johannes H. C. Cornelissen;Jurgen van Hal
Jurgen van Hal in OpenAIRECoarse woody debris is a key terrestrial carbon pool, and its turnover through fire plays a fundamental role in global carbon cycling. Coarse dead wood fuel properties, which vary between tree species and wood decay stages, might affect its combustion, consumption and carbon gas emissions during fire, either directly or indirectly through interacting with moisture or ground-wood contact. Using controlled laboratory burns, we tried to disentangle the effects of multiple biotic and abiotic factors: tree species (one conifer and three hard wood species), wood decay stages, moisture content, and ground-wood contact on coarse wood combustion, consumption, and CO2 and CO emissions during fire. Wood density was measured for all samples. We found that, compared to the other tested factors, wood decay stages acted as a predominant positive driver increasing coarse wood flammability and associated CO2 and CO emissions during fire. Wood moisture content (30 versus 7%) moderately inhibited wood flammability with slight interaction with wood decay effects. Wood decay effects can be mainly attributed to the decreasing wood density as wood becomes more decomposed. Our experimental data provides useful information for how several wood properties, especially moisture content and wood decay stages, with wood density as the key underlying trait, together drive coarse wood carbon turnover through fire to the atmosphere. Our results will help to improve the predictive power of global vegetation climate models on dead wood turnover and its feedback to climate.
Forest Ecology and M... arrow_drop_down Forest Ecology and ManagementArticle . 2018 . Peer-reviewedLicense: Elsevier TDMData sources: CrossrefForest Ecology and ManagementArticle . 2018Data sources: DANS (Data Archiving and Networked Services)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=10.1016/j.foreco.2018.06.016&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen bronze 11 citations 11 popularity Top 10% influence Average impulse Average Powered by BIP!
more_vert Forest Ecology and M... arrow_drop_down Forest Ecology and ManagementArticle . 2018 . Peer-reviewedLicense: Elsevier TDMData sources: CrossrefForest Ecology and ManagementArticle . 2018Data sources: DANS (Data Archiving and Networked Services)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=10.1016/j.foreco.2018.06.016&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2011 France, Australia, NetherlandsPublisher:Elsevier BV Funded by:EC | COCOSEC| COCOSAuthors:van Der Molen, M.K.;
van Der Molen, M.K.
van Der Molen, M.K. in OpenAIREDolman, A.J.;
Ciais, P.; Eglin, T.; +22 AuthorsDolman, A.J.
Dolman, A.J. in OpenAIREvan Der Molen, M.K.;
van Der Molen, M.K.
van Der Molen, M.K. in OpenAIREDolman, A.J.;
Ciais, P.; Eglin, T.; Gobron, N.;Dolman, A.J.
Dolman, A.J. in OpenAIRELaw, B.E.;
Meir, P.;Law, B.E.
Law, B.E. in OpenAIREPeters, W.;
Peters, W.
Peters, W. in OpenAIREPhillips, O.L.;
Phillips, O.L.
Phillips, O.L. in OpenAIREReichstein, M.;
Chen, T.;Reichstein, M.
Reichstein, M. in OpenAIREDekker, S.C.;
Doubková, M.; Friedl, M.A.; Jung, M.; van den Hurk, B.J.J.M.; de Jeu, R.A.M.;Dekker, S.C.
Dekker, S.C. in OpenAIREKruijt, B.;
Ohta, T.; Rebel, K.T.; Plummer, S.; Seneviratne, S.I.; Sitch, S.;Kruijt, B.
Kruijt, B. in OpenAIRETeuling, A.J.;
Teuling, A.J.
Teuling, A.J. in OpenAIREvan Der Werf, G.R.;
Wang, G.;van Der Werf, G.R.
van Der Werf, G.R. in OpenAIREhandle: 1871/46686 , 1885/84873
Drought as an intermittent disturbance of the water cycle interacts with the carbon cycle differently than the ‘gradual’ climate change. During drought plants respond physiologically and structurally to prevent excessive water loss according to species-specific water use strategies. This has consequences for carbon uptake by photosynthesis and release by total ecosystem respiration. After a drought the disturbances in the reservoirs of moisture, organic matter and nutrients in the soil and carbohydrates in plants lead to longer-term effects in plant carbon cycling, and potentially mortality. Direct and carry-over effects, mortality and consequently species competition in response to drought are strongly related to the survival strategies of species. Here we review the state of the art of the understanding of the relation between soil moisture drought and the interactions with the carbon cycle of the terrestrial ecosystems. We argue that plant strategies must be given an adequate role in global vegetation models if the effects of drought on the carbon cycle are to be described in a way that justifies the interacting processes.
Australian National ... arrow_drop_down Australian National University: ANU Digital CollectionsArticleFull-Text: http://hdl.handle.net/1885/84873Data sources: Bielefeld Academic Search Engine (BASE)Agricultural and Forest MeteorologyArticle . 2011Data sources: DANS (Data Archiving and Networked Services)Agricultural and Forest MeteorologyArticle . 2011 . Peer-reviewedLicense: Elsevier TDMData sources: CrossrefAgricultural and Forest MeteorologyArticle . 2011Data sources: DANS (Data Archiving and Networked Services)Agricultural and Forest MeteorologyArticle . 2011Data sources: SESAM Publication Database - FP7 ENVInstitut national des sciences de l'Univers: HAL-INSUArticle . 2011Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2011Data 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=10.1016/j.agrformet.2011.01.018&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen bronze 466 citations 466 popularity Top 0.1% influence Top 1% impulse Top 1% Powered by BIP!
more_vert Australian National ... arrow_drop_down Australian National University: ANU Digital CollectionsArticleFull-Text: http://hdl.handle.net/1885/84873Data sources: Bielefeld Academic Search Engine (BASE)Agricultural and Forest MeteorologyArticle . 2011Data sources: DANS (Data Archiving and Networked Services)Agricultural and Forest MeteorologyArticle . 2011 . Peer-reviewedLicense: Elsevier TDMData sources: CrossrefAgricultural and Forest MeteorologyArticle . 2011Data sources: DANS (Data Archiving and Networked Services)Agricultural and Forest MeteorologyArticle . 2011Data sources: SESAM Publication Database - FP7 ENVInstitut national des sciences de l'Univers: HAL-INSUArticle . 2011Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2011Data 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=10.1016/j.agrformet.2011.01.018&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Other literature type , Journal 2006 France, United StatesPublisher:Copernicus GmbH G. J. Collatz; Louis Giglio; James T. Randerson; Prasad S. Kasibhatla;G. R. van der Werf;
G. R. van der Werf
G. R. van der Werf in OpenAIREAvelino F. Arellano;
Avelino F. Arellano;Avelino F. Arellano
Avelino F. Arellano in OpenAIREhandle: 1871/21390
Abstract. Biomass burning represents an important source of atmospheric aerosols and greenhouse gases, yet little is known about its interannual variability or the underlying mechanisms regulating this variability at continental to global scales. Here we investigated fire emissions during the 8 year period from 1997 to 2004 using satellite data and the CASA biogeochemical model. Burned area from 2001–2004 was derived using newly available active fire and 500 m. burned area datasets from MODIS following the approach described by Giglio et al. (2006). ATSR and VIRS satellite data were used to extend the burned area time series back in time through 1997. In our analysis we estimated fuel loads, including organic soil layer and peatland fuels, and the net flux from terrestrial ecosystems as the balance between net primary production (NPP), heterotrophic respiration (Rh), and biomass burning, using time varying inputs of precipitation (PPT), temperature, solar radiation, and satellite-derived fractional absorbed photosynthetically active radiation (fAPAR). For the 1997–2004 period, we found that on average approximately 58 Pg C year−1 was fixed by plants as NPP, and approximately 95% of this was returned back to the atmosphere via Rh. Another 4%, or 2.5 Pg C year−1 was emitted by biomass burning; the remainder consisted of losses from fuel wood collection and subsequent burning. At a global scale, burned area and total fire emissions were largely decoupled from year to year. Total carbon emissions tracked burning in forested areas (including deforestation fires in the tropics), whereas burned area was largely controlled by savanna fires that responded to different environmental and human factors. Biomass burning emissions showed large interannual variability with a range of more than 1 Pg C year−1, with a maximum in 1998 (3.2 Pg C year−1) and a minimum in 2000 (2.0 Pg C year−1).
INRIA a CCSD electro... arrow_drop_down INRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serverINRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serverAtmospheric Chemistry and PhysicsArticle . 2006 . Peer-reviewedLicense: CC BY NC SAData sources: Crossrefhttps://doi.org/10.5194/acpd-6...Article . 2006 . Peer-reviewedLicense: CC BY NC SAData sources: CrossrefAtmospheric Chemistry and PhysicsArticle . 2006Data sources: DANS (Data Archiving and Networked Services)INRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serverINRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serveradd 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/acp-6-3423-2006&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eu1K citations 1,436 popularity Top 0.1% influence Top 0.1% impulse Top 0.1% Powered by BIP!
visibility 1visibility views 1 Powered bymore_vert INRIA a CCSD electro... arrow_drop_down INRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serverINRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serverAtmospheric Chemistry and PhysicsArticle . 2006 . Peer-reviewedLicense: CC BY NC SAData sources: Crossrefhttps://doi.org/10.5194/acpd-6...Article . 2006 . Peer-reviewedLicense: CC BY NC SAData sources: CrossrefAtmospheric Chemistry and PhysicsArticle . 2006Data sources: DANS (Data Archiving and Networked Services)INRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serverINRIA a CCSD electronic archive serverArticle . 2006Data sources: INRIA a CCSD electronic archive serveradd 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/acp-6-3423-2006&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2008 France, Netherlands, United States, FrancePublisher:Proceedings of the National Academy of Sciences Authors:van der Werf, G. R;
Dempewolf, J.; Trigg, S. N; Randerson, J. T; +8 Authorsvan der Werf, G. R
van der Werf, G. R in OpenAIREvan der Werf, G. R;
Dempewolf, J.; Trigg, S. N; Randerson, J. T;van der Werf, G. R
van der Werf, G. R in OpenAIREKasibhatla, P. S;
Kasibhatla, P. S
Kasibhatla, P. S in OpenAIREGiglio, L.;
Murdiyarso, D.;Giglio, L.
Giglio, L. in OpenAIREPeters, W.;
Morton, D. C; Collatz, G. J;Peters, W.
Peters, W. in OpenAIREDolman, A. J;
DeFries, R. S;Dolman, A. J
Dolman, A. J in OpenAIREpmid: 19075224
pmc: PMC2629304
Drainage of peatlands and deforestation have led to large-scale fires in equatorial Asia, affecting regional air quality and global concentrations of greenhouse gases. Here we used several sources of satellite data with biogeochemical and atmospheric modeling to better understand and constrain fire emissions from Indonesia, Malaysia, and Papua New Guinea during 2000–2006. We found that average fire emissions from this region [128 ± 51 (1σ) Tg carbon (C) year −1 , T = 10 12 ] were comparable to fossil fuel emissions. In Borneo, carbon emissions from fires were highly variable, fluxes during the moderate 2006 El Niño more than 30 times greater than those during the 2000 La Niña (and with a 2000–2006 mean of 74 ± 33 Tg C yr −1 ). Higher rates of forest loss and larger areas of peatland becoming vulnerable to fire in drought years caused a strong nonlinear relation between drought and fire emissions in southern Borneo. Fire emissions from Sumatra showed a positive linear trend, increasing at a rate of 8 Tg C year −2 (approximately doubling during 2000–2006). These results highlight the importance of including deforestation in future climate agreements. They also imply that land manager responses to expected shifts in tropical precipitation may critically determine the strength of climate–carbon cycle feedbacks during the 21st century.
CGIAR CGSpace (Consu... arrow_drop_down CGIAR CGSpace (Consultative Group on International Agricultural Research)Article . 2012Full-Text: https://hdl.handle.net/10568/20043Data sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2008Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2008Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2008Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2008 . Peer-reviewedData sources: Crossrefadd 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=10.1073/pnas.0803375105&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen bronze 311 citations 311 popularity Top 1% influence Top 1% impulse Top 1% Powered by BIP!
more_vert CGIAR CGSpace (Consu... arrow_drop_down CGIAR CGSpace (Consultative Group on International Agricultural Research)Article . 2012Full-Text: https://hdl.handle.net/10568/20043Data sources: Bielefeld Academic Search Engine (BASE)Proceedings of the National Academy of SciencesArticle . 2008Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2008Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2008Data sources: DANS (Data Archiving and Networked Services)Proceedings of the National Academy of SciencesArticle . 2008 . Peer-reviewedData sources: Crossrefadd 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=10.1073/pnas.0803375105&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription 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 ServicesAuthors:Hanqin Tian;
Hanqin Tian
Hanqin Tian in OpenAIRENaiqing Pan;
Naiqing Pan
Naiqing Pan in OpenAIRERona L. Thompson;
Rona L. Thompson
Rona L. Thompson in OpenAIREJosep G. Canadell;
+54 AuthorsJosep G. Canadell
Josep G. Canadell in OpenAIREHanqin Tian;
Hanqin Tian
Hanqin Tian in OpenAIRENaiqing Pan;
Naiqing Pan
Naiqing Pan in OpenAIRERona L. Thompson;
Rona L. Thompson
Rona L. Thompson in OpenAIREJosep G. Canadell;
Josep G. Canadell
Josep G. Canadell in OpenAIREP. Suntharalingam;
P. Suntharalingam
P. Suntharalingam in OpenAIREPierre Regnier;
Pierre Regnier
Pierre Regnier in OpenAIREEric A. Davidson;
Eric A. Davidson
Eric A. Davidson in OpenAIREMichael J. Prather;
Michael J. Prather
Michael J. Prather in OpenAIREPhilippe Ciais;
Philippe Ciais
Philippe Ciais in OpenAIREMarilena Muntean;
Marilena Muntean
Marilena Muntean in OpenAIREShufen Pan;
Shufen Pan
Shufen Pan in OpenAIREWilfried Winiwarter;
Wilfried Winiwarter
Wilfried Winiwarter in OpenAIRESönke Zaehle;
Sönke Zaehle
Sönke Zaehle in OpenAIREFeng Zhou;
Feng Zhou
Feng Zhou in OpenAIRERobert B. Jackson;
Robert B. Jackson
Robert B. Jackson in OpenAIREHermann W. Bange;
Hermann W. Bange
Hermann W. Bange in OpenAIRESarah Berthet;
Sarah Berthet
Sarah Berthet in OpenAIREZihao Bian;
Zihao Bian
Zihao Bian in OpenAIREDaniele Bianchi;
Daniele Bianchi
Daniele Bianchi in OpenAIRELex Bouwman;
Lex Bouwman
Lex Bouwman in OpenAIREErik T. Buitenhuis;
Erik T. Buitenhuis
Erik T. Buitenhuis in OpenAIREG. S. Dutton;
G. S. Dutton
G. S. Dutton in OpenAIREMinpeng Hu;
Minpeng Hu
Minpeng Hu in OpenAIREAkihiko Ito;
Akihiko Ito
Akihiko Ito in OpenAIREAtul K. Jain;
Atul K. Jain
Atul K. Jain in OpenAIREAurich Jeltsch‐Thömmes;
Aurich Jeltsch‐Thömmes
Aurich Jeltsch‐Thömmes in OpenAIREFortunat Joos;
Fortunat Joos
Fortunat Joos in OpenAIRESian Kou‐Giesbrecht;
Sian Kou‐Giesbrecht
Sian Kou‐Giesbrecht in OpenAIREP. B. Krummel;
P. B. Krummel
P. B. Krummel in OpenAIRELan X;
Lan X
Lan X in OpenAIREAngela Landolfi;
Angela Landolfi
Angela Landolfi in OpenAIRERonny Lauerwald;
Ronny Lauerwald
Ronny Lauerwald in OpenAIREYa Li;
Ya Li
Ya Li in OpenAIREChaoqun Lü;
Chaoqun Lü
Chaoqun Lü in OpenAIRETaylor Maavara;
Taylor Maavara
Taylor Maavara in OpenAIREManfredi Manizza;
Manfredi Manizza
Manfredi Manizza in OpenAIREDylan B. Millet;
Dylan B. Millet
Dylan B. Millet in OpenAIREJens Mühle;
Jens Mühle
Jens Mühle in OpenAIREPrabir K. Patra;
Prabir K. Patra
Prabir K. Patra in OpenAIREGlen P. Peters;
Glen P. Peters
Glen P. Peters in OpenAIREXiaoyu Qin;
Xiaoyu Qin
Xiaoyu Qin in OpenAIREPeter Raymond;
Peter Raymond
Peter Raymond in OpenAIRELaure Resplandy;
Laure Resplandy
Laure Resplandy in OpenAIREJudith A. Rosentreter;
Judith A. Rosentreter
Judith A. Rosentreter in OpenAIREHao Shi;
Hao Shi
Hao Shi in OpenAIREQing Sun;
Qing Sun
Qing Sun in OpenAIREDaniele Tonina;
Daniele Tonina
Daniele Tonina in OpenAIREFrancesco N. Tubiello;
Francesco N. Tubiello
Francesco N. Tubiello in OpenAIREGuido R. van der Werf;
Guido R. van der Werf
Guido R. van der Werf in OpenAIRENicolas Vuichard;
Nicolas Vuichard
Nicolas Vuichard in OpenAIREJunjie Wang;
Junjie Wang
Junjie Wang in OpenAIREKelley C. Wells;
Kelley C. Wells
Kelley C. Wells in OpenAIRELuke M. Western;
Luke M. Western
Luke M. Western in OpenAIREChris Wilson;
Chris Wilson
Chris Wilson in OpenAIREJia Yang;
Jia Yang
Jia Yang in OpenAIREYuanzhi Yao;
Yuanzhi Yao
Yuanzhi Yao in OpenAIREYongfa You;
Yongfa You
Yongfa You in OpenAIREQing Zhu;
Qing Zhu
Qing Zhu in OpenAIREAbstract. 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.
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 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 2018Embargo end date: 20 Sep 2024 Germany, Australia, Germany, Australia, France, Germany, Netherlands, United KingdomPublisher:Copernicus GmbH Publicly fundedFunded by:EC | CRESCENDO, RCN | Jordsystem-modellering av..., EC | RINGO +10 projectsEC| CRESCENDO ,RCN| Jordsystem-modellering av klimaforandringer i den antroposene tidsalder; Earth system modelling of climate Variations in the Anthropocene ,EC| RINGO ,EC| FIXO3 ,RCN| CICEP-Strategic Challenges in International Climate and Energy Policy ,RCN| Integrated Carbon Observation System (ICOS)-Norway and Ocean Thematic Centre (OTC) ,UKRI| Amazon Integrated Carbon Analysis / AMAZONICA ,EC| GEOCARBON ,NWO| The distribution and evolution of inert and reactant scalars: from the atmospheric boundary layer to continental scales ,EC| QUINCY ,EC| VERIFY ,EC| IMBALANCE-P ,EC| AtlantOSAuthors: C. Le Quéré;R. M. Andrew;
R. M. Andrew
R. M. Andrew in OpenAIREP. Friedlingstein;
S. Sitch; +82 AuthorsP. Friedlingstein
P. Friedlingstein in OpenAIREC. Le Quéré;R. M. Andrew;
R. M. Andrew
R. M. Andrew in OpenAIREP. Friedlingstein;
S. Sitch;P. Friedlingstein
P. Friedlingstein in OpenAIREJ. Hauck;
J. Hauck
J. Hauck in OpenAIREJ. Pongratz;
J. Pongratz;J. Pongratz
J. Pongratz in OpenAIREP. A. Pickers;
P. A. Pickers
P. A. Pickers in OpenAIREJ. I. Korsbakken;
G. P. Peters;J. I. Korsbakken
J. I. Korsbakken in OpenAIREJ. G. Canadell;
J. G. Canadell
J. G. Canadell in OpenAIREA. Arneth;
V. K. Arora; L. Barbero; L. Barbero;A. Arneth
A. Arneth in OpenAIREA. Bastos;
A. Bastos
A. Bastos in OpenAIREL. Bopp;
F. Chevallier;
L. P. Chini; P. Ciais;F. Chevallier
F. Chevallier in OpenAIRES. C. Doney;
T. Gkritzalis;S. C. Doney
S. C. Doney in OpenAIRED. S. Goll;
D. S. Goll
D. S. Goll in OpenAIREI. Harris;
I. Harris
I. Harris in OpenAIREV. Haverd;
V. Haverd
V. Haverd in OpenAIREF. M. Hoffman;
M. Hoppema; R. A. Houghton;F. M. Hoffman
F. M. Hoffman in OpenAIREG. Hurtt;
T. Ilyina;G. Hurtt
G. Hurtt in OpenAIREA. K. Jain;
T. Johannessen; C. D. Jones;A. K. Jain
A. K. Jain in OpenAIREE. Kato;
R. F. Keeling;K. K. Goldewijk;
K. K. Goldewijk;K. K. Goldewijk
K. K. Goldewijk in OpenAIREP. Landschützer;
N. Lefèvre; S. Lienert; Z. Liu; Z. Liu; D. Lombardozzi;P. Landschützer
P. Landschützer in OpenAIREN. Metzl;
D. R. Munro; J. E. M. S. Nabel;N. Metzl
N. Metzl in OpenAIRES.-I. Nakaoka;
C. Neill; C. Neill;S.-I. Nakaoka
S.-I. Nakaoka in OpenAIREA. Olsen;
T. Ono; P. Patra;A. Olsen
A. Olsen in OpenAIREA. Peregon;
W. Peters; W. Peters; P. Peylin; B. Pfeil; B. Pfeil; D. Pierrot; D. Pierrot;A. Peregon
A. Peregon in OpenAIREB. Poulter;
G. Rehder;B. Poulter
B. Poulter in OpenAIREL. Resplandy;
E. Robertson; M. Rocher; C. Rödenbeck; U. Schuster; J. Schwinger;L. Resplandy
L. Resplandy in OpenAIRER. Séférian;
R. Séférian
R. Séférian in OpenAIREI. Skjelvan;
T. Steinhoff;I. Skjelvan
I. Skjelvan in OpenAIREA. Sutton;
P. P. Tans;A. Sutton
A. Sutton in OpenAIREH. Tian;
B. Tilbrook;
B. Tilbrook;B. Tilbrook
B. Tilbrook in OpenAIREF. N. Tubiello;
I. T. van der Laan-Luijkx;F. N. Tubiello
F. N. Tubiello in OpenAIREG. R. van der Werf;
G. R. van der Werf
G. R. van der Werf in OpenAIREN. Viovy;
N. Viovy
N. Viovy in OpenAIREA. P. Walker;
A. J. Wiltshire;A. P. Walker
A. P. Walker in OpenAIRER. Wright;
R. Wright;R. Wright
R. Wright in OpenAIRES. Zaehle;
S. Zaehle
S. Zaehle in OpenAIREB. Zheng;
B. Zheng
B. Zheng in OpenAIREAbstract. 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. Fossil CO2 emissions (EFF) are based on energy statistics and cement production data, while emissions from land use and 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 (2008–2017), EFF was 9.4±0.5 GtC yr−1, ELUC 1.5±0.7 GtC yr−1, GATM 4.7±0.02 GtC yr−1, SOCEAN 2.4±0.5 GtC yr−1, and SLAND 3.2±0.8 GtC yr−1, with a budget imbalance BIM of 0.5 GtC yr−1 indicating overestimated emissions and/or underestimated sinks. For the year 2017 alone, the growth in EFF was about 1.6 % and emissions increased to 9.9±0.5 GtC yr−1. Also for 2017, ELUC was 1.4±0.7 GtC yr−1, GATM was 4.6±0.2 GtC yr−1, SOCEAN was 2.5±0.5 GtC yr−1, and SLAND was 3.8±0.8 GtC yr−1, with a BIM of 0.3 GtC. The global atmospheric CO2 concentration reached 405.0±0.1 ppm averaged over 2017. For 2018, preliminary data for the first 6–9 months indicate a renewed growth in EFF of +2.7 % (range of 1.8 % to 3.7 %) based on national emission projections for China, the US, the EU, 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. The analysis presented here shows that the mean and trend in the five components of the global carbon budget are consistently estimated over the period of 1959–2017, but discrepancies of up to 1 GtC yr−1 persist for the representation of semi-decadal variability in CO2 fluxes. A detailed comparison among individual estimates and the introduction of a broad range of observations show (1) no consensus in the mean and trend in land-use change emissions, (2) a persistent low agreement among the different methods on the magnitude of the land CO2 flux in the northern extra-tropics, and (3) an apparent underestimation of the CO2 variability by ocean models, originating outside the tropics. This living data update documents changes in the methods and data sets used in this new global carbon budget and the progress in understanding the global carbon cycle compared with previous publications of this data set (Le Quéré et al., 2018, 2016, 2015a, b, 2014, 2013). All results presented here can be downloaded from https://doi.org/10.18160/GCP-2018.
OceanRep arrow_drop_down Institut national des sciences de l'Univers: HAL-INSUArticle . 2018Full-Text: https://hal.science/hal-01951197Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2019License: CC BYData sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2018Full-Text: https://hal.science/hal-01951197Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2018Full-Text: https://hal.science/hal-01951197Data sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Earth System Science Data (ESSD)Article . 2018 . Peer-reviewedLicense: CC BYData sources: CrossrefWageningen Staff PublicationsArticle . 2018License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2018Data sources: Electronic Publication Information CenterEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedData sources: European Union Open Data PortalUniversity 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-10-2141-2018&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen gold 1K citations 1,204 popularity Top 0.01% influence Top 0.1% impulse Top 0.01% Powered by BIP!
visibility 115visibility views 115 download downloads 1,953 Powered bymore_vert OceanRep arrow_drop_down Institut national des sciences de l'Univers: HAL-INSUArticle . 2018Full-Text: https://hal.science/hal-01951197Data sources: Bielefeld Academic Search Engine (BASE)KITopen (Karlsruhe Institute of Technologie)Article . 2019License: CC BYData sources: Bielefeld Academic Search Engine (BASE)École Polytechnique, Université Paris-Saclay: HALArticle . 2018Full-Text: https://hal.science/hal-01951197Data sources: Bielefeld Academic Search Engine (BASE)Université de Versailles Saint-Quentin-en-Yvelines: HAL-UVSQArticle . 2018Full-Text: https://hal.science/hal-01951197Data sources: Bielefeld Academic Search Engine (BASE)University of East Anglia: UEA Digital RepositoryArticle . 2018License: CC BYData sources: Bielefeld Academic Search Engine (BASE)Earth System Science Data (ESSD)Article . 2018 . Peer-reviewedLicense: CC BYData sources: CrossrefWageningen Staff PublicationsArticle . 2018License: CC BYData sources: Wageningen Staff PublicationsElectronic Publication Information CenterArticle . 2018Data sources: Electronic Publication Information CenterEarth System Science Data (ESSD)Article . 2018 . Peer-reviewedData sources: European Union Open Data PortalUniversity 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-10-2141-2018&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.eudescription Publicationkeyboard_double_arrow_right Article , Journal 2019Publisher:Elsevier BV Authors:Emilio Chuvieco;
Emilio Chuvieco
Emilio Chuvieco in OpenAIREFlorent Mouillot;
Florent Mouillot
Florent Mouillot in OpenAIREGuido R. van der Werf;
Jesús San Miguel; +9 AuthorsGuido R. van der Werf
Guido R. van der Werf in OpenAIREEmilio Chuvieco;
Emilio Chuvieco
Emilio Chuvieco in OpenAIREFlorent Mouillot;
Florent Mouillot
Florent Mouillot in OpenAIREGuido R. van der Werf;
Jesús San Miguel; Mihai Tanase;Guido R. van der Werf
Guido R. van der Werf in OpenAIRENikos Koutsias;
Mariano García;Nikos Koutsias
Nikos Koutsias in OpenAIREMarta Yebra;
Marta Yebra
Marta Yebra in OpenAIREMarc Padilla;
Marc Padilla
Marc Padilla in OpenAIREIoannis Gitas;
Angelika Heil; Todd J. Hawbaker;Ioannis Gitas
Ioannis Gitas in OpenAIRELouis Giglio;
Louis Giglio
Louis Giglio in OpenAIREFire has a diverse range of impacts on Earth's physical and social systems. Accurate and up to date information on areas affected by fire is critical to better understand drivers of fire activity, as well as its relevance for biogeochemical cycles, climate, air quality, and to aid fire management. Mapping burned areas was traditionally done from field sketches. With the launch of the first Earth observation satellites, remote sensing quickly became a more practical alternative to detect burned areas, as they provide timely regional and global coverage of fire occurrence. This review paper explores the physical basis to detect burned area from satellite observations, describes the historical trends of using satellite sensors to monitor burned areas, summarizes the most recent approaches to map burned areas and evaluates the existing burned area products (both at global and regional scales). Finally, it identifies potential future opportunities to further improve burned area detection from Earth observation satellites.
Remote Sensing of En... arrow_drop_down Remote Sensing of EnvironmentArticle . 2019 . Peer-reviewedLicense: CC BY NC NDData sources: CrossrefRemote Sensing of EnvironmentArticle . 2019Data sources: DANS (Data Archiving and Networked Services)Recolector de Ciencia Abierta, RECOLECTAArticle . 2019License: CC BY NC SAData sources: Recolector de Ciencia Abierta, RECOLECTAadd 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=10.1016/j.rse.2019.02.013&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euAccess RoutesGreen hybrid 350 citations 350 popularity Top 0.1% influence Top 1% impulse Top 0.1% Powered by BIP!
visibility 154visibility views 154 download downloads 97 Powered bymore_vert Remote Sensing of En... arrow_drop_down Remote Sensing of EnvironmentArticle . 2019 . Peer-reviewedLicense: CC BY NC NDData sources: CrossrefRemote Sensing of EnvironmentArticle . 2019Data sources: DANS (Data Archiving and Networked Services)Recolector de Ciencia Abierta, RECOLECTAArticle . 2019License: CC BY NC SAData sources: Recolector de Ciencia Abierta, RECOLECTAadd 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=10.1016/j.rse.2019.02.013&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| HELIXAuthors:Bronte Tilbrook;
Bronte Tilbrook;Bronte Tilbrook
Bronte Tilbrook in OpenAIREJessica N. Cross;
Jessica N. Cross
Jessica N. Cross in OpenAIREGuido R. van der Werf;
+83 AuthorsGuido R. van der Werf
Guido R. van der Werf in OpenAIREBronte Tilbrook;
Bronte Tilbrook;Bronte Tilbrook
Bronte Tilbrook in OpenAIREJessica N. Cross;
Jessica N. Cross
Jessica N. Cross in OpenAIREGuido R. van der Werf;
Yukihiro Nojiri; Denis Pierrot; Denis Pierrot; Arne Körtzinger;Guido R. van der Werf
Guido R. van der Werf in OpenAIREAndrew J. Watson;
Nathalie Lefèvre;Andrew J. Watson
Andrew J. Watson in OpenAIRENicolas Metzl;
Nicolas Metzl
Nicolas Metzl in OpenAIREAndrew Lenton;
Andrew Lenton;Andrew Lenton
Andrew Lenton in OpenAIREX. Antonio Padin;
David R. Munro;X. Antonio Padin
X. Antonio Padin in OpenAIREAndrew C. Manning;
Philippe Ciais; Leticia Barbero; Leticia Barbero;Andrew C. Manning
Andrew C. Manning in OpenAIREKees Klein Goldewijk;
Kees Klein Goldewijk; Markus Kautz; Ivan D. Lima;Kees Klein Goldewijk
Kees Klein Goldewijk in OpenAIREBenjamin Poulter;
Benjamin Poulter; Sebastian Lienert; Sebastian Lienert; Pieter P. Tans;Benjamin Poulter
Benjamin Poulter in OpenAIREOliver Andrews;
Oliver Andrews
Oliver Andrews in OpenAIREGeorge C. Hurtt;
Janet J. Reimer;George C. Hurtt
George C. Hurtt in OpenAIREIngunn Skjelvan;
Ingunn Skjelvan
Ingunn Skjelvan in OpenAIREPeter Landschützer;
Peter Landschützer
Peter Landschützer in OpenAIREFrancesco N. Tubiello;
Thomas A. Boden;Francesco N. Tubiello
Francesco N. Tubiello in OpenAIREAnthony P. Walker;
Anthony P. Walker
Anthony P. Walker in OpenAIREPedro M. S. Monteiro;
Kim I. Currie;Pedro M. S. Monteiro
Pedro M. S. Monteiro in OpenAIRERobert B. Jackson;
Vivek K. Arora; Meike Becker; Meike Becker;Robert B. Jackson
Robert B. Jackson in OpenAIREBenjamin D. Stocker;
Benjamin D. Stocker
Benjamin D. Stocker in OpenAIRENicolas Vuichard;
Tatiana Ilyina; Richard A. Houghton;Nicolas Vuichard
Nicolas Vuichard in OpenAIREStephen Sitch;
Stephen Sitch
Stephen Sitch in OpenAIRESönke Zaehle;
Christian Rödenbeck;Sönke Zaehle
Sönke Zaehle in OpenAIREDorothee C. E. Bakker;
Dorothee C. E. Bakker
Dorothee C. E. Bakker in OpenAIREJudith Hauck;
Judith Hauck
Judith Hauck in OpenAIREJörg Schwinger;
Julia E. M. S. Nabel;Jörg Schwinger
Jörg Schwinger in OpenAIREJan Ivar Korsbakken;
Jan Ivar Korsbakken
Jan Ivar Korsbakken in OpenAIREFrédéric Chevallier;
Andy Wiltshire; Ralph F. Keeling; Catherine E Cosca;Frédéric Chevallier
Frédéric Chevallier in OpenAIREThomas Gasser;
Ingrid T. van der Laan-Luijkx; Richard Betts; Richard Betts;Thomas Gasser
Thomas Gasser in OpenAIREShin-Ichiro Nakaoka;
Shin-Ichiro Nakaoka
Shin-Ichiro Nakaoka in OpenAIREIan Harris;
Ian Harris
Ian Harris in OpenAIRERobbie M. Andrew;
Robbie M. Andrew
Robbie M. Andrew in OpenAIRERoland Séférian;
Roland Séférian
Roland Séférian in OpenAIREPierre Friedlingstein;
Steven van Heuven; Christopher W. Hunt;Pierre Friedlingstein
Pierre Friedlingstein in OpenAIRELaurent Bopp;
Laurent Bopp
Laurent Bopp in OpenAIREDan Zhu;
Julia Pongratz;
Gregor Rehder; Louise Chini;Julia Pongratz
Julia Pongratz in OpenAIRENicolas Viovy;
Frank J. Millero;Nicolas Viovy
Nicolas Viovy in OpenAIREEtsushi Kato;
Benjamin Pfeil; Benjamin Pfeil;Etsushi Kato
Etsushi Kato in OpenAIREGlen P. Peters;
Glen P. Peters
Glen P. Peters in OpenAIREJosep G. Canadell;
Josep G. Canadell
Josep G. Canadell in OpenAIREAnna Peregon;
Anna Peregon
Anna Peregon in OpenAIREAtul K. Jain;
Corinne Le Quéré; Danica Lombardozzi;Atul K. Jain
Atul K. Jain in OpenAIREVanessa Haverd;
Vanessa Haverd
Vanessa Haverd in OpenAIREHanqin Tian;
Hanqin Tian
Hanqin Tian in OpenAIREAbstract. 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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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 , Journal 2006 United StatesPublisher:American Geophysical Union (AGU) Authors:Louis Giglio;
Louis Giglio
Louis Giglio in OpenAIREPrasad S. Kasibhatla;
G. James Collatz; James T. Randerson; +3 AuthorsPrasad S. Kasibhatla
Prasad S. Kasibhatla in OpenAIRELouis Giglio;
Louis Giglio
Louis Giglio in OpenAIREPrasad S. Kasibhatla;
G. James Collatz; James T. Randerson;Prasad S. Kasibhatla
Prasad S. Kasibhatla in OpenAIREGuido R. van der Werf;
Guido R. van der Werf
Guido R. van der Werf in OpenAIREAvelino F. Arellano;
Avelino F. Arellano;Avelino F. Arellano
Avelino F. Arellano in OpenAIREdoi: 10.1029/2005jd006613
handle: 1871/23277
We present an inverse‐modeling analysis of CO emissions using column CO retrievals from the Measurement of Pollution in the Troposphere (MOPITT) instrument and a global chemical transport model (GEOS‐CHEM). We first focus on the information content of MOPITT CO column retrievals in terms of constraining CO emissions associated with biomass burning and fossil fuel/biofuel use. Our analysis shows that seasonal variation of biomass‐burning CO emissions in Africa, South America, and Southeast Asia can be characterized using monthly mean MOPITT CO columns. For the fossil fuel/biofuel source category the derived monthly mean emission estimates are noisy even when the error statistics are accurately known, precluding a characterization of seasonal variations of regional CO emissions for this source category. The derived estimate of CO emissions from biomass burning in southern Africa during the June–July 2000 period is significantly higher than the prior estimate (prior, 34 Tg; posterior, 13 Tg). We also estimate that emissions are higher relative to the prior estimate in northern Africa during December 2000 to January 2001 and lower relative to the prior estimate in Central America and Oceania/Indonesia during April–May and September–October 2000, respectively. While these adjustments provide better agreement of the model with MOPITT CO column fields and with independent measurements of surface CO from National Oceanic and Atmospheric Administration Climate Monitoring and Diagnostics Laboratory at background sites in the Northern Hemisphere, some systematic differences between modeled and measured CO fields persist, including model overestimation of background surface CO in the Southern Hemisphere. Characterizing and accounting for underlying biases in the measurement model system are needed to improve the robustness of the top‐down estimates.
Journal of Geophysic... arrow_drop_down Journal of Geophysical Research AtmospheresArticle . 2006Data sources: DANS (Data Archiving and Networked Services)Journal of Geophysical Research AtmospheresArticle . 2006 . Peer-reviewedLicense: Wiley Online Library User AgreementData sources: Crossrefadd 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 bronze 82 citations 82 popularity Top 10% influence Top 10% impulse Top 10% Powered by BIP!
more_vert Journal of Geophysic... arrow_drop_down Journal of Geophysical Research AtmospheresArticle . 2006Data sources: DANS (Data Archiving and Networked Services)Journal of Geophysical Research AtmospheresArticle . 2006 . Peer-reviewedLicense: Wiley Online Library User AgreementData sources: Crossrefadd 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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