Shipping and algae emissions have a major impact on ambient air mixing ratios of non-methane hydrocarbons (NMHCs) and methanethiol on Utö Island in the Baltic Sea
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Published:2024-04-19
Issue:8
Volume:24
Page:4717-4731
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Hellén HeidiORCID, Kouznetsov RostislavORCID, Kraft KaisaORCID, Seppälä Jukka, Vestenius Mika, Jalkanen Jukka-PekkaORCID, Laakso Lauri, Hakola Hannele
Abstract
Abstract. The mixing ratios of highly volatile organic compounds (VOCs) were studied on Utö Island in the Baltic Sea. Measurements of non-methane hydrocarbons (NMHCs) and methanethiol (unexpectedly found during the experiment) were conducted using an in situ thermal desorption–gas chromatography–flame ionization detector/mass spectrometer (TD-GC-FID/MS) from March 2018 until March 2019. The mean mixing ratios of NMHCs (alkanes, alkenes, alkynes, and aromatic hydrocarbons) were at the typical levels for rural/remote sites in Europe, and, as expected, the highest mixing ratios were measured in winter, while in the summertime, the mixing ratios remained close to or below detection limits for most of the studied compounds. Sources of NMHCs during wintertime were studied using positive matrix factorization (PMF) together with wind direction analyses and source area estimates. Shipping was found to be a major local anthropogenic source of NMHCs with a 21 % contribution. It especially contributed to ethene, propene, and ethyne mixing ratios. Other identified sources were petrol fuel (15 %), traffic exhaust (14 %), local solvents (6 %), and long-range-transported background (42 %). Contrary to NMHCs, high mixing ratios of methanethiol were detected in summertime (July mean of 1000 pptv). The mixing ratios followed the variations in seawater temperatures and sea level height and were highest during the daytime. Biogenic phytoplankton or macroalgae emissions were expected to be the main source of methanethiol.
Funder
Research Council of Finland Horizon 2020
Publisher
Copernicus GmbH
Reference55 articles.
1. Anderson, M., Salo, K. and Fridell, E.: Particle- and Gaseous Emissions from an LNG Powered Ship, Environ. Sci. Technol., 49, 12568–12575, https://doi.org/10.1021/acs.est.5b02678, 2015. 2. Bourtsoukidis, E., Ernle, L., Crowley, J. N., Lelieveld, J., Paris, J.-D., Pozzer, A., Walter, D., and Williams, J.: Non-methane hydrocarbon (C2–C8) sources and sinks around the Arabian Peninsula, Atmos. Chem. Phys., 19, 7209–7232, https://doi.org/10.5194/acp-19-7209-2019, 2019. 3. Carslaw, D. C.: Package “Openair.” Tools for the analysis of air pollution data, GitHub [code], http://davidcarslaw.github.io/openair/ (last access: 9 April 2024), 2018. 4. Castano, N. P., Ramirez, V., and Cancelado, J. A.: Controlling Painters' Exposure to Volatile Organic Solvents in the automotive Sector of Southern Colombia, Safety and Health Work, 10, 355–361, https://doi.org/10.1016/j.shaw.2019.06.001, 2019. 5. CEN: DIN EN 16695 water quality – guidance on the estimation of phytoplankton biovolume: English version EN 16695, https://standards.iteh.ai/catalog/standards/cen/bcc87031-164e-45b9-933a-7db83d4658f4/en-16695-2015 (last access: 9 July 2020), 2015.
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