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Evaluation of column-averaged methane in models and TCCON with a focus on the stratosphere

Journal Article · · Atmospheric Measurement Techniques (Online)
 [1];  [1];  [2];  [3];  [4];  [5];  [5];  [5];  [6];  [6];  [6];  [7];  [8];  [9];  [10];  [10];  [11];  [11];  [12];  [13]
  1. Karlsruhe Institute of Technology, Garmisch-Partenkirchen (Germany)
  2. Research Institute for Global Change, Yokohama (Japan)
  3. Utrecht Univ., Utrecht (The Netherlands); SRON Netherlands Institute for Space Research, Utrecht (The Netherlands)
  4. Utrecht Univ., Utrecht (The Netherlands)
  5. Karlsruhe Institute of Technology, Karlsruhe (Germany)
  6. Lab. des Sciences du Climat et de l'Environnement, Gif-sur-Yvette (France); Univ. de Versailles Saint Quentin en Yvelines, Versaille (France)
  7. Univ. of Toronto, Toronto, ON (Canada)
  8. Univ. of Wollongong, Wollongong (Australia); Univ. of Bremen, Bremen (Germany)
  9. Univ. of Wollongong, Wollongong (Australia)
  10. Lab. des Sciences du Climat et de l'Environnement, Gif-sur-Yvette (France)
  11. Univ. of Bremen, Bremen (Germany)
  12. Finnish Meteorological Institute, Sodankyla (Finland)
  13. National Institute of Water and Atmospheric Research (NIWA) Ltd., Wellington (New Zealand)

The distribution of methane (CH4) in the stratosphere can be a major driver of spatial variability in the dry-air column-averaged CH4 mixing ratio (XCH4), which is being measured increasingly for the assessment of CH4 surface emissions. Chemistry-transport models (CTMs) therefore need to simulate the tropospheric and stratospheric fractional columns of XCH4 accurately for estimating surface emissions from XCH4. Simulations from three CTMs are tested against XCH4 observations from the Total Carbon Column Network (TCCON). We analyze how the model–TCCON agreement in XCH4 depends on the model representation of stratospheric CH4 distributions. Model equivalents of TCCON XCH4 are computed with stratospheric CH4 fields from both the model simulations and from satellite-based CH4 distributions from MIPAS (Michelson Interferometer for Passive Atmospheric Sounding) and MIPAS CH4 fields adjusted to ACE-FTS (Atmospheric Chemistry Experiment Fourier Transform Spectrometer) observations. Using MIPAS-based stratospheric CH4 fields in place of model simulations improves the model–TCCON XCH4 agreement for all models. For the Atmospheric Chemistry Transport Model (ACTM) the average XCH4 bias is significantly reduced from 38.1 to 13.7 ppb, whereas small improvements are found for the models TM5 (Transport Model, version 5; from 8.7 to 4.3 ppb) and LMDz (Laboratoire de Météorologie Dynamique model with zooming capability; from 6.8 to 4.3 ppb). Replacing model simulations with MIPAS stratospheric CH4 fields adjusted to ACE-FTS reduces the average XCH4 bias for ACTM (3.3 ppb), but increases the average XCH4 bias for TM5 (10.8 ppb) and LMDz (20.0 ppb). These findings imply that model errors in simulating stratospheric CH4 contribute to model biases. Current satellite instruments cannot definitively measure stratospheric CH4 to sufficient accuracy to eliminate these biases. Applying transport diagnostics to the models indicates that model-to-model differences in the simulation of stratospheric transport, notably the age of stratospheric air, can largely explain the inter-model spread in stratospheric CH4 and, hence, its contribution to XCH4. Furthermore, it would be worthwhile to analyze how individual model components (e.g., physical parameterization, meteorological data sets, model horizontal/vertical resolution) impact the simulation of stratospheric CH4 and XCH4.

Research Organization:
Karlsruhe Institute of Technology, Garmisch-Partenkirchen (Germany)
Sponsoring Organization:
USDOE
OSTI ID:
1375417
Journal Information:
Atmospheric Measurement Techniques (Online), Journal Name: Atmospheric Measurement Techniques (Online) Journal Issue: 9 Vol. 9; ISSN 1867-8548
Publisher:
European Geosciences UnionCopyright Statement
Country of Publication:
United States
Language:
English

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Coupled Stratospheric Chemistry–Meteorology Data Assimilation. Part I: Physical Background and Coupled Modeling Aspects journal January 2020
Seasonal variability of stratospheric methane: implications for constraining tropospheric methane budgets using total column observations journal January 2016
Contributions of the troposphere and stratosphere to CH 4 model biases journal January 2017
Atmospheric CO and CH4 time series and seasonal variations on Reunion Island from ground-based in situ and FTIR (NDACC and TCCON) measurements journal January 2018
Analysis of total column CO2 and CH4 measurements in Berlin with WRF-GHG journal January 2019
Seasonal Variability of Stratospheric Methane: Implications for Constraining Tropospheric Methane Budgets Using Total Column Observations journal May 2016
Atmospheric CO and CH4 time series and seasonal variations on Reunion Island from ground-based in-situ and FTIR (NDACC and TCCON) measurements posted_content May 2018
The arctic seasonal cycle of total column CO 2 and CH 4 from ground-based solar and lunar FTIR absorption spectrometry journal January 2017
Retrieval of atmospheric CH4 vertical information from ground-based FTS near-infrared spectra journal January 2019
The arctic seasonal cycle of total column CO2 and CH4 from ground-based solar and lunar FTIR absorption spectrometry journal February 2017
Seasonal variability of stratospheric methane: implications for constraining tropospheric methane budgets using total column observations text January 2016

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