Using portable low-resolution spectrometers to evaluate Total Carbon Column Observing Network (TCCON) biases in North America
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Published:2023-03-09
Issue:5
Volume:16
Page:1239-1261
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ISSN:1867-8548
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Container-title:Atmospheric Measurement Techniques
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language:en
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Short-container-title:Atmos. Meas. Tech.
Author:
Mostafavi Pak NasrinORCID, Hedelius Jacob K.ORCID, Roche SébastienORCID, Cunningham Liz, Baier Bianca, Sweeney ColmORCID, Roehl ColeenORCID, Laughner JoshuaORCID, Toon Geoffrey, Wennberg Paul, Parker Harrison, Arrowsmith Colin, Mendonca Joseph, Fogal Pierre, Wizenberg TylerORCID, Herrera Beatriz, Strong KimberlyORCID, Walker Kaley A.ORCID, Vogel FelixORCID, Wunch DebraORCID
Abstract
Abstract. EM27/SUN devices are portable solar-viewing Fourier transform spectrometers (FTSs) that are being widely used to constrain measurements of greenhouse gas emissions and validate satellite trace gas measurements. On a 6-week-long campaign in the summer of 2018, four EM27/SUN devices were taken to five Total Carbon Column Observing Network (TCCON) stations in North America, to measure side by side, to better understand their durability, the accuracy and precision of retrievals from their trace gas measurements, and to constrain site-to-site bias among TCCON sites. We developed new EM27/SUN data products using both previous and current versions of the retrieval algorithm (GGG2014 and GGG2020) and used coincident AirCore measurements to tie the gas retrievals to the World Meteorological Organization (WMO) trace gas standard scales. We also derived air-mass-dependent correction factors for the EM27/SUN devices. Pairs of column-averaged dry-air mole fractions (denoted with an X) measured by the EM27/SUN devices remained consistent compared to each other during the entire campaign, with a 10 min averaged precision of 0.3 ppm (parts per million) for XCO2, 1.7 ppb (parts per billion) for XCH4, and 2.5 ppb for XCO. The maximum biases between TCCON stations were reduced in GGG2020 relative to GGG2014 from 1.3 to 0.5 ppm for XCO2 and from 5.4 to 4.3 ppb for XCH4 but increased for XCO from 2.2 to 6.1 ppb. The increased XCO biases in GGG2020 are driven by measurements at sites influenced by urban emissions (Caltech and the Armstrong Flight Research Center) where the priors overestimate surface CO. In addition, in 2020, one EM27/SUN instrument was sent to the Canadian Arctic TCCON station at Eureka, and side-by-side measurements were performed in March–July. In contrast to the other TCCON stations that showed an improvement in the biases with the newer version of GGG, the biases between Eureka's TCCON measurements and those from the EM27/SUN degraded with GGG2020, but this degradation was found to be caused by a temperature dependence in the EM27/SUN oxygen retrievals that is not apparent in the GGG2014 retrievals.
Funder
University of Toronto Canada Foundation for Innovation Ontario Research Foundation Canadian Network for Research and Innovation in Machining Technology, Natural Sciences and Engineering Research Council of Canada National Aeronautics and Space Administration Environment and Climate Change Canada
Publisher
Copernicus GmbH
Subject
Atmospheric Science
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