B038-0001
Aquatic Ecosystems are the Most Uncertain but Potentially Largest Source of Methane on Earth

Wednesday, 9 December 2020
Poster
Judith Andrea Rosentreter1, Alberto V. Borges2, Peter A Raymond3, Bridget Deemer4, Meredith Holgerson5, Carlos M Duarte6, Shaoda Liu3, Chunlin Song7, George H. Allen8, John M. Melack9, Benjamin Poulter10, David Olefeldt11, Battin Tom12 and Bradley Eyre13, (1)Southern Cross University, Centre for Coastal Biogeochemistry, Sao Paulo, SP, Brazil, (2)University of Liege, Chemical Oceanography Unit, Liege, Belgium, (3)Yale University, School of the Environment, New Haven, CT, United States, (4)USGS, Flagstaff, United States, (5)St. Olaf College, Northfield, OR, United States, (6)King Abdullah University of Science and Technology, Red Sea Research Center, Thuwal, Saudi Arabia, (7)Yale University, New Haven, United States, (8)Texas A&M University, Department of Geography, College Station, TX, United States, (9)University of California Santa Barbara, Santa Barbara, CA, United States, (10)NASA GSFC, Biospheric Science, Greenbelt, MD, United States, (11)University of Alberta, Department of Renewable Resources, Edmonton, AB, Canada, (12)Ecole Polytechnique Federale de Lausanne, Lausanne, Switzerland, (13)Southern Cross University, Centre for Coastal Biogeochemistry, East Lismore, Australia
Abstract:
Atmospheric methane is a potent greenhouse gas that has tripled in concentration since pre-industrial times. The causes of rising methane concentrations are poorly understood given its multiple sources and complex biogeochemistry. Natural and human-made aquatic ecosystems, including wetlands, are potentially the largest single source of methane, but their total emissions relative to other sources have not been assessed. Based on a new synthesis of inventory, remote sensing and modeling efforts, we present a bottom-up estimate of methane emissions from streams and rivers, freshwater lakes and reservoirs, estuaries, coastal wetlands (mangroves, seagrasses, salt-marshes), intertidal flats, aquaculture ponds, continental shelves, along with recently published estimates of global methane emissions from freshwater wetlands, rice paddies, the continental slope and open ocean. Our findings emphasize the high variability of aquatic methane fluxes and a possibly skewed distribution of currently available data, making global estimates sensitive to statistical assumptions. Mean emissions make aquatic ecosystems the largest source of methane globally (53% of total global methane emissions). Median emissions are 42% of the total global methane emissions. We argue that these emissions will likely increase due to urbanization, eutrophication and climate change.