Limitations of the radon tracer method (RTM) to estimate regional greenhouse gas (GHG) emissions – a case study for methane in Heidelberg
-
Published:2021-12-07
Issue:23
Volume:21
Page:17907-17926
-
ISSN:1680-7324
-
Container-title:Atmospheric Chemistry and Physics
-
language:en
-
Short-container-title:Atmos. Chem. Phys.
Author:
Levin IngeborgORCID, Karstens UteORCID, Hammer Samuel, DellaColetta Julian, Maier FabianORCID, Gachkivskyi Maksym
Abstract
Abstract. Correlations of nighttime atmospheric methane (CH4) and
222radon (222Rn) observations in Heidelberg, Germany, were
evaluated with the radon tracer method (RTM) to estimate the trend of annual
nocturnal CH4 emissions from 1996–2020 in the footprint of the
station. After an initial 30 % decrease in emissions from 1996 to
2004, there was no further systematic trend but small inter-annual variations were
observed thereafter. This is in accordance with the trend of total
emissions until 2010 reported by the EDGARv6.0 inventory for the surroundings
of Heidelberg and provides a fully independent top-down verification of the
bottom-up inventory changes. We show that the reliability of total
nocturnal CH4 emission estimates with the RTM critically depends on
the accuracy and representativeness of the 222Rn exhalation rates
estimated from soils in the footprint of the site. Simply using
222Rn fluxes as estimated by Karstens et al. (2015) could lead to
biases in the estimated greenhouse gas (GHG) fluxes as large as a factor of 2. RTM-based GHG flux estimates also depend on the parameters chosen for the
nighttime correlations of CH4 and 222Rn, such as the
nighttime period for regressions and the R2 cut-off value for the
goodness of the fit. Quantitative comparison of total RTM-based top-down flux
estimates with bottom-up emission inventories requires representative
high-resolution footprint modelling, particularly in polluted areas where
CH4 emissions show large heterogeneity. Even then, RTM-based
estimates are likely biased low if point sources play a significant role in
the station footprint as their emissions may not be fully captured
by the RTM method, for example, if stack emissions are injected above the top
of the nocturnal inversion layer or if point-source emissions from the
surface are not well mixed into the footprint of the measurement
site. Long-term representative 222Rn flux observations in the
footprint of a station are indispensable in order to apply the RTM method for
reliable quantitative flux estimations of GHG emissions from
atmospheric observations.
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference59 articles.
1. Bergamaschi, P., Frankenberg, C., Meirink, J. F., Krol, M., Villani, M. G., Houweling, S., Dentener, F., Dlugokencky, E. J., Miller, J. B., Gatti, L. V., Engel, A., and Levin, I.: Inverse modeling of global and regional CH4 emissions using SCIAMACHY satellite retrievals, J. Geophys. Res., 114, D22301, https://doi.org/10.1029/2009JD012287, 2009. 2. Bergamaschi, P., Karstens, U., Manning, A. J., Saunois, M., Tsuruta, A., Berchet, A., Vermeulen, A. T., Arnold, T., Janssens-Maenhout, G., Hammer, S., Levin, I., Schmidt, M., Ramonet, M., Lopez, M., Lavric, J., Aalto, T., Chen, H., Feist, D. G., Gerbig, C., Haszpra, L., Hermansen, O., Manca, G., Moncrieff, J., Meinhardt, F., Necki, J., Galkowski, M., O'Doherty, S., Paramonova, N., Scheeren, H. A., Steinbacher, M., and Dlugokencky, E.: Inverse modelling of European CH4 emissions during 2006–2012 using different inverse models and reassessed atmospheric observations, Atmos. Chem. Phys., 18, 901–920, https://doi.org/10.5194/acp-18-901-2018, 2018. 3. Biraud, S., Ciais, P., Ramonet, M., Simmonds, P., Kazan, V. Monfray, P.,
O'Doherty, S. Spain, T. G., and Jennings, S. G.: European greenhouse gas
emissions estimated from continuous atmospheric measurements and radon 222 at
Mace Head, Ireland, J. Geophys. Res., 105, 1351–1366, https://doi.org/10.1029/1999JD900821, 2000. 4. Blake, D. and Rowland, F. S.: Continuing worldwide increase in tropospheric methane, Science, 239, 1129–1131, https://doi.org/10.1126/science.239.4844.1129, 1988. 5. Brown, C. W. and Keeling, C. D.: The concentration of atmospheric carbon dioxide in Antarctica, J. Geophys. Res., 70, 6077–6085, https://doi.org/10.1029/JZ070i024p06077, 1965.
Cited by
14 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|