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Updated: May 8, 2026

Design and Use of a Full Flow Sampling System FFS for the Quantification of Methane Emissions
Published on: June 12, 2016
A Bayesian inversion of TROPOMI methane observations over South Africa: Implications for bottom-up inventories
Keneuoe A Maliehe1, James Goulding2, Stuart Marsh3
1Nottingham Geospatial Institute, University of Nottingham, 30 Triumph Road, Nottingham, NG7 2TU, UK; Neodermographics Lab, Nottingham University Business School, Wollaton Road, Nottingham, NG8 1BB, UK.
Abstract:
We present the first inverse analysis of 2019 annual mean methane (CH4) emissions in South Africa, focusing on a rectilinear region between the latitudes of 24°- 28° South and the longitudes of 26° - 30° East, containing large commercial agricultural fields, the biggest industries and urbanised environments. Using TROPOMI satellite observations and the cloud-based Integrated Methane Inversion v2 tool, we estimate CH4 emissions at a spatial resolution of 25 × 25 km2. Our analysis employs the EDGAR v8 greenhouse gas inventory as the prior and produces a posterior estimate of 0.65 Tg CH4 yr-1 - 62% lower than the original bottom-up inventory estimate. This substantial discrepancy is discussed in the context of potential uncertainties in emission factors and activity data, particularly for livestock-dominated regions, where relative prediction errors in cattle energy intake calculations can exceed 20%. The exclusion of biogenic sources in bottom-up inventories may also contribute to these differences, though such sources would likely increase, not decrease, anthropogenic emissions. These findings underscore the limitations of bottom-up approaches for accurate CH4 emissions quantification. Our study contributes to global CH4 research by providing the first satellite-based inverse analysis of CH4 observations for South Africa and the first observational evaluation of the country's 2019 gridded CH4 inventory from the Department of Forestry, Fisheries, and the Environment.
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