The global methane budget 2000–2012

Глобальный баланс метана в 2000–2012 гг.
Philippe Ciais, Shushi Peng, Glen P. Peters, Patrick Crill, Giuseppe Etiope, Christine Wiedinmyer, David Bastviken, D. R. Blake, Benjamin Poulter, Fortunat Joos, Isamu Morino, Debra Wunch, Cyril Crévoisier, Paul B. Krummel, Simon O’Doherty, Vivek K. Arora, Jean‐François Lamarque, Robert B. Jackson, Yukio Yoshida, Christian Frankenberg, Michiel van Weele, Hanqin Tian, Bowen Zhang, Lori Bruhwiler, Prabir K. Patra, Zhen Zhang, David J. Beerling, Joe R. Melton, Catherine Prigent, Changhui Peng, Akihiko Ito, Francesco N. Tubiello, Nicolas Viovy, Josep G. Canadell, Guido R. van der Werf, Sander Houweling, Michel Ramonet, Victor Brovkin, P. Bergamaschi, Philippe Bousquet, Andy Wiltshire, Dlugokencky, Edward J., Ronald G. Prinn, Marielle Saunois, E. J. Dlugokencky, R. L. Langenfelds, Renato Spahni, Ray F. Weiss, W. J. Riley, Thomas Kleinen, Qiuan Zhu, David J. Wilton, Frans‐Jan W. Parmentier, Apostolos Voulgarakis, Nicola Gedney, Greet Janssens‐Maenhout, Lena Höglund-Isaksson, Anna Peregon, Vaishali Naïk, Isobel J. Simpson, Simona Castaldi, Mihai Alexe, Gordon Brailsford, Kristofer Covey, Charles L. Curry, Misa Ishizawa, Heon-Sook Kim, Robin Locatelli, Toshinobu Machida, Shamil Maksyutov, K. C. McDonald, Julia Marshall, Isabelle Pison, Makoto Saito, Monia Santini, R. Schroeder, P. Steele, Atsushi Takizawa, Brett F. Thornton, Yasunori Tohjima, Doug Worthy, Xiyan Xu
2016-12-12

Global Carbon Projectatmospheric inverse modelingbottom-up emission inventoriesglobal methane budgetmethane emissions
Abstract. The global methane (CH4) budget is becoming an increasingly important component for managing realistic pathways to mitigate climate change. This relevance, due to a shorter atmospheric lifetime and a stronger warming potential than carbon dioxide, is challenged by the still unexplained changes of atmospheric CH4 over the past decade. Emissions and concentrations of CH4 are continuing to increase, making CH4 the second most important human-induced greenhouse gas after carbon dioxide. Two major difficulties in reducing uncertainties come from the large variety of diffusive CH4 sources that overlap geographically, and from the destruction of CH4 by the very short-lived hydroxyl radical (OH). To address these difficulties, we have established a consortium of multi-disciplinary scientists under the umbrella of the Global Carbon Project to synthesize and stimulate research on the methane cycle, and producing regular (∼ biennial) updates of the global methane budget. This consortium includes atmospheric physicists and chemists, biogeochemists of surface and marine emissions, and socio-economists who study anthropogenic emissions. Following Kirschke et al. (2013), we propose here the first version of a living review paper that integrates results of top-down studies (exploiting atmospheric observations within an atmospheric inverse-modelling framework) and bottom-up models, inventories and data-driven approaches (including process-based models for estimating land surface emissions and atmospheric chemistry, and inventories for anthropogenic emissions, data-driven extrapolations). For the 2003–2012 decade, global methane emissions are estimated by top-down inversions at 558 Tg CH4 yr−1, range 540–568. About 60 % of global emissions are anthropogenic (range 50–65 %). Since 2010, the bottom-up global emission inventories have been closer to methane emissions in the most carbon-intensive Representative Concentrations Pathway (RCP8.5) and higher than all other RCP scenarios. Bottom-up approaches suggest larger global emissions (736 Tg CH4 yr−1, range 596–884) mostly because of larger natural emissions from individual sources such as inland waters, natural wetlands and geological sources. Considering the atmospheric constraints on the top-down budget, it is likely that some of the individual emissions reported by the bottom-up approaches are overestimated, leading to too large global emissions. Latitudinal data from top-down emissions indicate a predominance of tropical emissions (∼ 64 % of the global budget, < 30° N) as compared to mid (∼ 32 %, 30–60° N) and high northern latitudes (∼ 4 %, 60–90° N). Top-down inversions consistently infer lower emissions in China (∼ 58 Tg CH4 yr−1, range 51–72, −14 %) and higher emissions in Africa (86 Tg CH4 yr−1, range 73–108, +19 %) than bottom-up values used as prior estimates. Overall, uncertainties for anthropogenic emissions appear smaller than those from natural sources, and the uncertainties on source categories appear larger for top-down inversions than for bottom-up inventories and models. The most important source of uncertainty on the methane budget is attributable to emissions from wetland and other inland waters. We show that the wetland extent could contribute 30–40 % on the estimated range for wetland emissions. Other priorities for improving the methane budget include the following: (i) the development of process-based models for inland-water emissions, (ii) the intensification of methane observations at local scale (flux measurements) to constrain bottom-up land surface models, and at regional scale (surface networks and satellites) to constrain top-down inversions, (iii) improvements in the estimation of atmospheric loss by OH, and (iv) improvements of the transport models integrated in top-down inversions. The data presented here can be downloaded from the Carbon Dioxide Information Analysis Center (http://doi.org/10.3334/CDIAC/GLOBAL_METHANE_BUDGET_2016_V1.1) and the Global Carbon Project.
1
Anthropogenic activities account for approximately 60% of global methane emissions, with an estimated range of 50–65%.
2
For 2003–2012, top-down inversions estimate global methane emissions at 558 Tg CH4 yr−1, with a range of 540–568 Tg CH4 yr−1.
3
It introduces a living-review framework integrating top-down atmospheric inversions with bottom-up models, inventories, and data-driven estimates.
4
Since 2010, bottom-up global emission inventories have been closer to the high-emission RCP8.5 pathway and higher than the other stated RCP scenarios.
5
The study establishes a multidisciplinary Global Carbon Project consortium to produce regular, approximately biennial updates of the global methane budget.

The global methane (CH4) budget for 2000–2012

Global methane emissions, sources, sinks, atmospheric concentrations, and their anthropogenic and natural contributions and uncertainties

Publication Details
Publication Date
2016-12-12
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Philippe Ciais
Shushi Peng
Glen P. Peters
Patrick Crill
Giuseppe Etiope
Christine Wiedinmyer
David Bastviken
D. R. Blake
Benjamin Poulter
Fortunat Joos
Isamu Morino
Debra Wunch
Cyril Crévoisier
Paul B. Krummel
Simon O’Doherty
Vivek K. Arora
Jean‐François Lamarque
Robert B. Jackson
Yukio Yoshida
Christian Frankenberg
Michiel van Weele
Hanqin Tian
Bowen Zhang
Lori Bruhwiler
Prabir K. Patra
Zhen Zhang
David J. Beerling
Joe R. Melton
Catherine Prigent
Changhui Peng
Akihiko Ito
Francesco N. Tubiello
Nicolas Viovy
Josep G. Canadell
Guido R. van der Werf
Sander Houweling
Michel Ramonet
Victor Brovkin
P. Bergamaschi
Philippe Bousquet
Andy Wiltshire
Dlugokencky, Edward J.
Ronald G. Prinn
Marielle Saunois
E. J. Dlugokencky
R. L. Langenfelds
Renato Spahni
Ray F. Weiss
W. J. Riley
Thomas Kleinen
Qiuan Zhu
David J. Wilton
Frans‐Jan W. Parmentier
Apostolos Voulgarakis
Nicola Gedney
Greet Janssens‐Maenhout
Lena Höglund-Isaksson
Anna Peregon
Vaishali Naïk
Isobel J. Simpson
Simona Castaldi
Mihai Alexe
Gordon Brailsford
Kristofer Covey
Charles L. Curry
Misa Ishizawa
Heon-Sook Kim
Robin Locatelli
Toshinobu Machida
Shamil Maksyutov
K. C. McDonald
Julia Marshall
Isabelle Pison
Makoto Saito
Monia Santini
R. Schroeder
P. Steele
Atsushi Takizawa
Brett F. Thornton
Yasunori Tohjima
Doug Worthy
Xiyan Xu
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%