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Global anthropogenic emissions of mercury and their future scenarios. NILU F

Pacyna, J.M.; Pacyna, E.G.; Sundseth, K.

2010

Global anthropogenic emissions of mercury to the atmosphere.

Pacyna, J.M.; Pacyna, E.G.; Steenhuisen, F.; Wilson, S. (Lead authors); Zaikowski, L. (Topic editor).

2007

Global anthropogenic mercury emission inventory for 2000.

Pacyna, E.G.; Pacyna, J.M.; Steenhuisen, F.; Wilson, S.

2006

Global carbon monoxide products from combined AIRS, TES and MLS measurements on A-train satellites.

Warner, J. X.; Yang, R.; Wei, Z.; Carminati, F.; Tangborn, A.; Sun, Z.; Lahoz, W.; Attié, J.-L.; El Amraoui, L.; Duncan, B.

2014

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 and abundances of chemically and radiatively important trace gases from the AGAGE network

Measurements from the Advanced Global Atmospheric Gases Experiment (AGAGE) combined with a global 12-box model of the atmosphere have long been used to estimate global emissions and surface mean mole fraction trends of atmospheric trace gases. Here, we present annually updated estimates of these global emissions and mole fraction trends for 42 compounds through 2023 measured by the AGAGE network, including chlorofluorocarbons, hydrochlorofluorocarbons, hydrofluorocarbons, perfluorocarbons, sulfur hexafluoride, nitrogen trifluoride, methane, nitrous oxide, and selected other compounds. The data sets are available at https://doi.org/10.5281/zenodo.15372480 (Western et al., 2025). We describe the methodology to derive global mole fraction and emissions trends, which includes the calculation of semihemispheric monthly mean mole fractions, the mechanics of the 12-box model and the inverse method that is used to estimate emissions from the observations and model. Finally, we present examples of the emissions and mole fraction data sets for the 42 compounds.

2025

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 in 2005 and their 2020 scenarios. NILU F

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

2008

Bok

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

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