This proof‐of‐concept study demonstrates that methane (CH 4 ) emissions from natural gas (NG) and agriculture can be disentangled using the concept of excess column observations. A network of cost‐effective sensors measured excess column‐averaged dry‐air mole fractions for CH 4 (ΔXCH 4 ), ethane (ΔXC 2 H 6 as NG tracer), and ammonia (ΔXNH 3 from agriculture) in the Denver‐Julesburg Basin during March 2015. ΔXCH 4 varied up to 17 ppb and was >3 times higher with winds from directions where NG is produced. The ΔXCH 4 variance is explained by variations in the C 2 H 6 ‐NH 3 tracer pair, attributing 63 ± 17% to NG, 25 ± 10% to agriculture, and 12 ± 12% to other sources. The ratios ΔXC 2 H 6 /ΔXCH 4 (16 ± 2%; indicates wet NG) and ΔXNH 3 /ΔXCH 4 (43 ± 12%) were compatible with in situ measured ratios. Excess columns are independent of boundary layer height, characterize gases in the open atmosphere, are inherently calibrated, average over extended spatial scales, and provide a complementary perspective to quantify and attribute CH 4 emissions on regional scales.
No takes yet. Share an insight, caveat, or question.
Kille et al. (2019) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: