The Global Methane Budget 2000-2017

Глобальный баланс метана в 2000–2017 годах
Philippe Ciais, Shushi Peng, Glen P. Peters, Yi Yin, Yi Yin, Patrick Crill, Giuseppe Etiope, David Bastviken, Zhen Zhang, D. R. Blake, Peter A. Raymond, Benjamin Poulter, Fortunat Joos, Isamu Morino, Debra Wunch, Cyril Crévoisier, Paul B. Krummel, Simon O’Doherty, Vivek K. Arora, Robert B. Jackson, Yukio Yoshida, Christian Frankenberg, Qing Zhu, Michiel van Weele, Hanqin Tian, Bowen Zhang, Lori Bruhwiler, Naveen Chandra, Prabir K. Patra, Zhen Zhang, Joe R. Melton, Gustaf Hugelius, Catherine Prigent, Zhen Zhang, Changhui Peng, Akihiko Ito, Francesco N. Tubiello, Nicolas Viovy, Josep G. Canadell, Guido R. van der Werf, Sander Houweling, Michel Ramonet, P. Bergamaschi, Philippe Bousquet, Andy Wiltshire, Ronald G. Prinn, Marielle Saunois, Changhui Peng, E. J. Dlugokencky, R. L. Langenfelds, Ray F. Weiss, W. J. Riley, Judith A. Rosentreter, Ann R. Stavert, Yosuke Niwa, Arjo Segers, Aki Tsuruta, Pierre Regnier, Joe McNorton, Thomas Kleinen, Qiuan Zhu, Hao Shi, Goulven G. Laruelle, David J. Wilton, Frans‐Jan W. Parmentier, Apostolos Voulgarakis, Wenxin Zhang, Paul Miller, Nicola Gedney, Greet Janssens‐Maenhout, Lena Höglund-Isaksson, Kimberly M. Carlson, Vaishali Naïk, Bo Zheng, Yuanhong Zhao, Isobel J. Simpson, Simona Castaldi, Mihai Alexe, Gordon Brailsford, Kristofer Covey, Charles L. Curry, Misa Ishizawa, Toshinobu Machida, Shamil Maksyutov, K. C. McDonald, Julia Marshall, P. Steele, Atsushi Takizawa, Brett F. Thornton, Yasunori Tohjima, Doug Worthy, Xiyan Xu, Qianlai Zhuang, Steven J. Smith, Kyle C. McDonald, Robert J. Parker, Thomas Weber, Peter A. Raymond, Naveen Chandra, Philippe Ciais, Thomas Kleinen, Shamil Maksyutov, Yosuke Niwa, Shushi Peng, William J. Riley, Bo Zheng, Qianlai Zhuang, Ann R. Stavert, Philippe Bousquet, Joseph G. Canadell, Edward J. Dlugokencky, Sander Houweling, David Bastviken, Lori Bruhwiler, Cyril Crevoisier, Patrick M. Crill, Kristofer Covey, Charles L. Curry, Christian Frankenberg, Michaela I. Hegglin, Lena Höglund-Isaksson, Heon-Sook Kim, Katherine M. Jensen, Ray L. Langenfelds, Toshinobu Machida, Kyle C. McDonald, Paul A. Miller, Isamu Morino, Jureck Müller, Fabiola Murgia-Flores, Sergio Noce, Simon O'Doherty, Robert J. Parker, Changhui Peng, Glen P. Peters, Judith A. Rosentreter, Isobel J. Simpson, L. Paul Steele, Guido R. van der Werf, Ray F. Weiss, Doug Worthy, Debra Wunch, Yukio Yoshida, Wenxin Zhang, Yuanhong Zhao, Qing Zhu, Qiuan Zhu, Jurek Müller, Fabiola Murguía‐Flores, Sergio Noce, Michaela I. Hegglin, L. P. Steele, Mark Carrol, Katherine Jensen, Licheng Liu
2019-08-28

Global Carbon Projectatmospheric inverse modelingbottom-up estimatesglobal methane budgetmethane emissions
Understanding and quantifying the global methane (CH4) budget is important for assessing realistic pathways to mitigate climate change. Atmospheric emissions and concentrations of CH4 continue to increase, making CH4 the second most important human-influenced greenhouse gas in terms of climate forcing, after carbon dioxide (CO2). The relative importance of CH4 compared to CO2 depends on its shorter atmospheric\nlifetime, stronger warming potential, and variations in atmospheric growth rate over the past decade, the causes of which are still debated. Two major challenges in reducing uncertainties in the atmospheric growth rate arise from the variety of geographically overlapping CH4 sources and from the destruction of CH4 by short-lived hydroxyl radicals (OH). To address these challenges, we have established a consortium of multidisciplinary scientists under the umbrella of the Global Carbon Project to synthesize and stimulate new research aimed at improving and regularly updating the global methane budget. Following Saunois et al. (2016), we present here the second version of the living review paper dedicated to the decadal methane budget, integrating results of top-down studies (atmospheric observations within an atmospheric inverse-modelling framework) and bottom-up estimates (including process-based models for estimating land surface emissions and atmospheric chemistry, inventories of anthropogenic emissions, and data-driven extrapolations).\nFor the 2008–2017 decade, global methane emissions are estimated by atmospheric inversions (a top-down approach) to be 576 TgCH4 yr-1 (range 550–594, corresponding to the minimum and maximum estimates of the model ensemble). Of this total, 359 TgCH4 yr-1 or 60% is attributed to anthropogenic sources, that is emissions caused by direct human activity (i.e. anthropogenic emissions; range 336–376 TgCH4 yr-1 or 50 %–65 %). The mean annual total emission for the new decade (2008–2017) is 29 TgCH4 yr-1 larger than our estimate for the previous decade (2000–2009), and 24 TgCH4 yr-1 larger than the one reported in the previous budget for 2003–2012 (Saunois et al., 2016). Since 2012, global CH4 emissions have been tracking the warmest scenarios assessed by the Intergovernmental Panel on Climate Change. Bottom-up methods suggest almost 30% larger global emissions (737 TgCH4 yr-1, range 594–881) than top-down inversion methods. Indeed, bottom-up estimates for natural sources such as natural wetlands, other inland water systems, and geological sources are higher than top-down estimates. The atmospheric constraints on the top-down budget suggest that at least some of these bottom-up emissions are overestimated. The latitudinal distribution of atmospheric observation-based emissions indicates a predominance of tropical emissions (∼65% of the global budget, <30◦N) compared to mid-latitudes (∼30 %, 30–60◦ N) and high northern latitudes (∼4 %, 60–90◦N). The most important source of uncertainty in the methane budget is attributable to natural emissions, especially those from wetlands and other inland waters.\nSome of our global source estimates are smaller than those in previously published budgets (Saunois et al., 2016; Kirschke et al., 2013). In particular wetland emissions are about 35 TgCH4 yr-1 lower due to improved partition wetlands and other inland waters. Emissions from geological sources and wild animals are also found to be smaller by 7 TgCH4 yr-1 by 8 TgCH4 yr-1, respectively. However, the overall discrepancy between bottom-up and top-down estimates has been reduced by only 5% compared to Saunois et al. (2016), due to a higher estimate of emissions from inland waters, highlighting the need for more detailed research on emissions factors. Priorities for improving the methane budget include (i) a global, high-resolution map of water-saturated soils and inundated areas emitting methane based on a robust classification of different types of emitting habitats; (ii) further development of process-based models for inland-water emissions; (iii) intensification of methane observations at local scales (e.g., FLUXNET-CH4 measurements) and urban-scale monitoring to constrain bottom-up land surface models, and at regional scales (surface networks and satellites) to constrain atmospheric inversions; (iv) improvements of transport models and the representation of photochemical sinks in top-down inversions; and (v) development of a 3D variational inversion system using isotopic and/or co-emitted species such as ethane to improve source partitioning.\nThe data presented here can be downloaded from https://doi.org/10.18160/GCP-CH4-2019 (Saunois et al.,\n2020) and from the Global Carbon Project
1
Anthropogenic activities contributed approximately 359 TgCH4 yr−1, or 60% of total methane emissions, with estimates ranging from 336–376 TgCH4 yr−1 (50%–65%).
2
For 2008–2017, atmospheric inversions estimate global methane emissions at 576 TgCH4 yr−1, with a model-ensemble range of 550–594 TgCH4 yr−1.
3
Major uncertainty sources include geographically overlapping methane sources and methane destruction by short-lived hydroxyl radicals (OH).
4
The 2008–2017 mean annual methane emission estimate is 29 TgCH4 yr−1 higher than the previous budget estimate.
5
The Global Carbon Project presents the second living-review synthesis of the global methane budget, combining top-down atmospheric inversions with bottom-up estimates.

The global methane (CH4) budget and its atmospheric sources and sinks during 2000–2017

Quantification and attribution of methane emissions, atmospheric growth, and uncertainties across anthropogenic and natural sources, including OH-driven atmospheric destruction

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2019-08-28
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Authors
Philippe Ciais
Shushi Peng
Glen P. Peters
Yi Yin
Yi Yin
Patrick Crill
Giuseppe Etiope
David Bastviken
Zhen Zhang
D. R. Blake
Peter A. Raymond
Benjamin Poulter
Fortunat Joos
Isamu Morino
Debra Wunch
Cyril Crévoisier
Paul B. Krummel
Simon O’Doherty
Vivek K. Arora
Robert B. Jackson
Yukio Yoshida
Christian Frankenberg
Qing Zhu
Michiel van Weele
Hanqin Tian
Bowen Zhang
Lori Bruhwiler
Naveen Chandra
Prabir K. Patra
Zhen Zhang
Joe R. Melton
Gustaf Hugelius
Catherine Prigent
Zhen Zhang
Changhui Peng
Akihiko Ito
Francesco N. Tubiello
Nicolas Viovy
Josep G. Canadell
Guido R. van der Werf
Sander Houweling
Michel Ramonet
P. Bergamaschi
Philippe Bousquet
Andy Wiltshire
Ronald G. Prinn
Marielle Saunois
Changhui Peng
E. J. Dlugokencky
R. L. Langenfelds
Ray F. Weiss
W. J. Riley
Judith A. Rosentreter
Ann R. Stavert
Yosuke Niwa
Arjo Segers
Aki Tsuruta
Pierre Regnier
Joe McNorton
Thomas Kleinen
Qiuan Zhu
Hao Shi
Goulven G. Laruelle
David J. Wilton
Frans‐Jan W. Parmentier
Apostolos Voulgarakis
Wenxin Zhang
Paul Miller
Nicola Gedney
Greet Janssens‐Maenhout
Lena Höglund-Isaksson
Kimberly M. Carlson
Vaishali Naïk
Bo Zheng
Yuanhong Zhao
Isobel J. Simpson
Simona Castaldi
Mihai Alexe
Gordon Brailsford
Kristofer Covey
Charles L. Curry
Misa Ishizawa
Toshinobu Machida
Shamil Maksyutov
K. C. McDonald
Julia Marshall
P. Steele
Atsushi Takizawa
Brett F. Thornton
Yasunori Tohjima
Doug Worthy
Xiyan Xu
Qianlai Zhuang
Steven J. Smith
Kyle C. McDonald
Robert J. Parker
Thomas Weber
Peter A. Raymond
Naveen Chandra
Philippe Ciais
Thomas Kleinen
Shamil Maksyutov
Yosuke Niwa
Shushi Peng
William J. Riley
Bo Zheng
Qianlai Zhuang
Ann R. Stavert
Philippe Bousquet
Joseph G. Canadell
Edward J. Dlugokencky
Sander Houweling
David Bastviken
Lori Bruhwiler
Cyril Crevoisier
Patrick M. Crill
Kristofer Covey
Charles L. Curry
Christian Frankenberg
Michaela I. Hegglin
Lena Höglund-Isaksson
Heon-Sook Kim
Katherine M. Jensen
Ray L. Langenfelds
Toshinobu Machida
Kyle C. McDonald
Paul A. Miller
Isamu Morino
Jureck Müller
Fabiola Murgia-Flores
Sergio Noce
Simon O'Doherty
Robert J. Parker
Changhui Peng
Glen P. Peters
Judith A. Rosentreter
Isobel J. Simpson
L. Paul Steele
Guido R. van der Werf
Ray F. Weiss
Doug Worthy
Debra Wunch
Yukio Yoshida
Wenxin Zhang
Yuanhong Zhao
Qing Zhu
Qiuan Zhu
Jurek Müller
Fabiola Murguía‐Flores
Sergio Noce
Michaela I. Hegglin
L. P. Steele
Mark Carrol
Katherine Jensen
Licheng Liu
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