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Fant 9854 publikasjoner. Viser side 147 av 395:

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Global Carbon Project N2O Budget: Contribution from Inversions

Thompson, Rona Louise; Tian, H.; Canadell, P.; Lassaletta, Luis; Patra, Prabir; Wilson, C.; Wells, Kelley C.; Gressent, Alicia; Koffi, Ernest; Chipperfield, Martyn P.; Winiwarter, Wilfried; Peters, G

2020

Global climate change impact on built heritage and cultural landscapes.

Sabbioni, C.; Cassar, M.; Brimblecombe, P.; Tidblad, J.; Kozlowski, R.; Drácky, M.; Saiz-Jimenez, C.; Grøntoft, T.; Wainwright, I.; Ariño, X.

2006

Global emission of mercury to the atmosphere from anthropogenic sources in 2005 and projections to 2020.

Pacyna, E.G.; Pacyna, J.M.; Sundseth, K.; Munthe, J.; Kindborn, K.; Wilson, S.; Steenhuisen, F.; Maxson, P.

2010

Global emissions of atmospheric microplastics revealed from inverse modelling

Evangeliou, Nikolaos; Tichy, Ondrej; Eckhardt, Sabine; Brahney, Janice

2021

Global emissions of HFC-143a (CH3CF3) and HFC-32 (CH2F2) from in situ and air archive atmospheric observations.

O'Doherty, S.; Rigby, M.; Mühle, J.; Ivy, D. J.; Miller, B. R.; Young, D.; Simmonds, P. G.; Reimann, S.; Vollmer, M. K.; Krummel, P. B.; Fraser, P. J.; Steele, L. P.; Dunse, B.; Salameh, P. K.; Harth, C. M.; Arnold, T.; Weiss, R. F.; Kim, J.; Park, S.; Li, S.; Lunder, C.; Hermansen, O.; Schmidbauer, N.; Zhou, L. X.; Yao, B.; Wang, R. H. J.; Manning, A. J.; Prinn, R. G.

2014

Global emissions of industrial POPs - is there a shift in source regions? NILU F

Breivik, K.; Chakraborty, P.; Eckhardt, S.; Gioia, R.; Jones, K.C.; Pacyna, J.M.; Sweetman, A.J.; Zhang, G.

2011

Global emissions of mercury to the atmosphere in 2005 and their 2020 scenarios.

Pacyna, J.M.; Pacyna, E.G.; Sundseth, K.; Munthe, J.; Wilson, S.; Leaner, J.

2010

Global emissions of mercury to the atmosphere in 2005 and their 2020 scenarios. NILU PP

Pacyna, J.M.; Pacyna, E.G.; Sundseth, K.; Munthe, J.; Wilson, S.; Leaner, J.

2009

Global emissions of mercury to the atmosphere in 2005 and their 2020 scenarios.

Pacyna, J.M, Pacyna, E.G.; Sundseth, K.; Munthe, J.; Wilson, S.; Leaner, J.

2010

Global emissions of mercury to the atmosphere.

Wilson, S.; Kondbom, K.; Yaramenka, K.; Steenhuisen, F.; Telmer, K.; Munthe, J. Contributing authors: Devia, L.; Gustafsson, T.; Jozewicz, W.; Kumari, R.; Leaner, J.; Maag, J.; Maioli, O.L.G.; Maxson, P.; Nelson, P.; Pacyna, J.; Pudasainee, D.; Seo, Y.C.; Sloss, L.; Solorzano, G.; Strum, M.; Sundseth, K.; Suzuki, N.

2013

Global environment outlook - Geo-6. Technical summary

Gupta, Joyeeta; Ekins, Paul; Boileau, Pierre (eds.) Asrar, Ghassem; Baker, Elaine; Banuri, Tariq; Bemigisha, Jane; Clark, Graeme; Crump, John; Mayocyoc-Daguitan, Florence; Davies, Jonathan; Dickerson, Phillip; Dronin, Nicoalai; Elder, Mark; Gaddis, Erica; Gensuo, Jia; Grobicki, Anna Maria; Guerreiro, Cristina; Guhl, Andres; Harris, Peter; Hay, Rowena; Hedden, Steve; Jacob, Klaus; Kainuma, Mikiko; Keating, Terry; King, Peter; Lehohla, Pali; Loewe, Christian; Lucas, Paul; Mangalagiu, Diana; Martino, Diego; McClain, Shanna; McMullen, Catherine; Mensah, Adelina; Murthy, Indu K.; Mwangi, Charles; Nzioka, John Muthama; Park, Jacob; Pereira, Laura; Prates, Fernando Filgueira; Rast, Walter; Rice, Jake; Seager, Joni; Sonntag, William; Stoett, Peter; Tan, Michelle; van Vuuren, Detlef; Zenghelis, Dimitri Alexis

Cambridge University Press

2021

Global fields of the methane isotopic ratio constrained with observations

Zwaaftink, Christine Groot; Thompson, Rona Louise; Tsuruta, Aki; Röckmann, Thomas; Levin, Ingeborg; Platt, Stephen Matthew

2023

Global Fire Monitoring

Kaiser, Johannes; Liu, Zixia; Di Tomaso, Enza; Parrington, Mark

2024

Global GHG Emissions and Budgets

Canadell, Josep G.; Andrew, Robbie; Ciais, Philippe; Davidson, Eric; Davis, Steven; Friedlingstein, Pierre; Jackson, Robert B.; Le Quéré, Corinne; Peters, Glen Philip; Thompson, Rona Louise; Tian, Hanqin; Liu, Zhu

2021

Global greenhouse gas reconciliation 2022

Deng, Zhu; Ciais, Philippe; Hu, Liting; Martinez, Adrien; Saunois, Marielle; Thompson, Rona Louise; Tibrewal, Kushal; Peters, Wouter; Byrne, Brendan; Grassi, Giacomo; Palmer, Paul I.; Luijkx, Ingrid T.; Liu, Zhu; Liu, Junjie; Fang, Xuekun; Wang, Tengjiao; Tian, Hanqin; Tanaka, Katsumasa; Bastos, Ana; Sitch, Stephen; Poulter, Benjamin; Albergel, Clement; Tsuruta, Aki; Maksyutov, Shamil; Janardanan, Rajesh; Niwa, Yosuke; Zheng, Bo; Thanwerdas, Joel; Belikov, Dmitry; Segers, Arjo; Chevallier, Frédéric

n this study, we provide an update on the methodology and data used by Deng et al. (2022) to compare the national greenhouse gas inventories (NGHGIs) and atmospheric inversion model ensembles contributed by international research teams coordinated by the Global Carbon Project. The comparison framework uses transparent processing of the net ecosystem exchange fluxes of carbon dioxide (CO2) from inversions to provide estimates of terrestrial carbon stock changes over managed land that can be used to evaluate NGHGIs. For methane (CH4), and nitrous oxide (N2O), we separate anthropogenic emissions from natural sources based directly on the inversion results to make them compatible with NGHGIs. Our global harmonized NGHGI database was updated with inventory data until February 2023 by compiling data from periodical United Nations Framework Convention on Climate Change (UNFCCC) inventories by Annex I countries and sporadic and less detailed emissions reports by non-Annex I countries given by national communications and biennial update reports. For the inversion data, we used an ensemble of 22 global inversions produced for the most recent assessments of the global budgets of CO2, CH4, and N2O coordinated by the Global Carbon Project with ancillary data. The CO2 inversion ensemble in this study goes through 2021, building on our previous report from 1990 to 2019, and includes three new satellite inversions compared to the previous study and an improved managed-land mask. As a result, although significant differences exist between the CO2 inversion estimates, both satellite and in situ inversions over managed lands indicate that Russia and Canada had a larger land carbon sink in recent years than reported in their NGHGIs, while the NGHGIs reported a significant upward trend of carbon sink in Russia but a downward trend in Canada. For CH4 and N2O, the results of the new inversion ensembles are extended to 2020. Rapid increases in anthropogenic CH4 emissions were observed in developing countries, with varying levels of agreement between NGHGIs and inversion results, while developed countries showed a slowly declining or stable trend in emissions. Much denser sampling of atmospheric CO2 and CH4 concentrations by different satellites, coordinated into a global constellation, is expected in the coming years. The methodology proposed here to compare inversion results with NGHGIs can be applied regularly for monitoring the effectiveness of mitigation policy and progress by countries to meet the objectives of their pledges. The dataset constructed for this study is publicly available at https://doi.org/10.5281/zenodo.13887128 (Deng et al., 2024).

2025

Global HCFC-22 measurements with MIPAS: retrieval, validation, global distribution and its evolution over 2005-2012.

Chirkov, M.; Stiller, G. P.; Laeng, A.; Kellmann, S.; von Clarmann, T.; Boone, C. D.; Elkins, J. W.; Engel, A.; Glatthor, N.; Grabowski, U.; Harth, C. M.; Kiefer, M.; Kolonjari, F.; Krummel, P. B.; Linden, A.; Lunder, C. R.; Miller, B. R.; Montzka, S. A.; Mühle, J.; O'Doherty, S.; Orphal, J.; Prinn, R. G.; Toon, G.; Vollmer, M. K.; Walker, K. A.; Weiss, R. F.; Wiegele, A.; Young, D.

2016

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