Contribution of anthropogenic and natural sources to atmospheric methane variability
Top Cited Papers
- 1 September 2006
- journal article
- Published by Springer Nature in Nature
- Vol. 443 (7110) , 439-443
- https://doi.org/10.1038/nature05132
Abstract
Methane is an important greenhouse gas, and its atmospheric concentration has nearly tripled since pre-industrial times. The growth rate of atmospheric methane is determined by the balance between surface emissions and photochemical destruction by the hydroxyl radical, the major atmospheric oxidant. Remarkably, this growth rate has decreased markedly since the early 1990s, and the level of methane has remained relatively constant since 1999, leading to a downward revision of its projected influence on global temperatures. Large fluctuations in the growth rate of atmospheric methane are also observed from one year to the next, but their causes remain uncertain. Here we quantify the processes that controlled variations in methane emissions between 1984 and 2003 using an inversion model of atmospheric transport and chemistry. Our results indicate that wetland emissions dominated the inter-annual variability of methane sources, whereas fire emissions played a smaller role, except during the 1997-1998 El Niño event. These top-down estimates of changes in wetland and fire emissions are in good agreement with independent estimates based on remote sensing information and biogeochemical models. On longer timescales, our results show that the decrease in atmospheric methane growth during the 1990s was caused by a decline in anthropogenic emissions. Since 1999, however, they indicate that anthropogenic emissions of methane have risen again. The effect of this increase on the growth rate of atmospheric methane has been masked by a coincident decrease in wetland emissions, but atmospheric methane levels may increase in the near future if wetland emissions return to their mean 1990s levels.Keywords
This publication has 30 references indexed in Scilit:
- Short-term variations in the oxidizing power of the atmosphereNature, 2005
- A 3‐D model analysis of the slowdown and interannual variability in the methane growth rate from 1988 to 1997Global Biogeochemical Cycles, 2004
- Continental-Scale Partitioning of Fire Emissions During the 1997 to 2001 El Niño/La Niña PeriodScience, 2004
- Atmospheric methane levels off: Temporary pause or a new steady‐state?Geophysical Research Letters, 2003
- Interannual variability and trend of CH4 lifetime as a measure for OH changes in the 1979–1993 time periodJournal of Geophysical Research: Atmospheres, 2003
- The amount of carbon released from peat and forest fires in Indonesia during 1997Nature, 2002
- Interannual growth rate variations of atmospheric CO2 and its δ13C, H2, CH4, and CO between 1992 and 1999 linked to biomass burningGlobal Biogeochemical Cycles, 2002
- Modeling modern methane emissions from natural wetlands: 2. Interannual variations 1982–1993Journal of Geophysical Research: Atmospheres, 2001
- Changes in CH4 and CO growth rates after the eruption of Mt. Pinatubo and their link with changes in tropical tropospheric UV fluxGeophysical Research Letters, 1996
- Correction to “A dramatic decrease in the growth rate of atmospheric methane in the northern hemisphere during 1992” by E. J. Dlugokencky, K. A. Masarie, P. M. Lang, P. P. Tans, L. P. Steele, and E. G. NisbetGeophysical Research Letters, 1994