0000000000393864

AUTHOR

Emma L. Mungall

showing 4 related works from this author

Frequent Ultrafine Particle Formation and Growth in the Canadian Arctic Marine Environment

2017

Abstract. The source strength and capability of aerosol particles in the Arctic to act as cloud condensation nuclei have important implications for understanding the indirect aerosol-cloud effect within the polar climate system. It has been shown in several Arctic regions that ultrafine particle (UFP) formation and growth is a key contributor to aerosol number concentrations during the summer. This study uses aerosol number size distribution measurements from ship-board measurement expeditions aboard the research icebreaker CCGS Amundsen in the summers of 2014 and 2016 throughout the Canadian Arctic to gain a deeper understanding of the drivers of UFP formation and growth within this marine…

0301 basic medicinegeographygeography.geographical_feature_category010504 meteorology & atmospheric sciencesAtmospheric sciences01 natural sciencesSink (geography)LatitudeAerosol03 medical and health sciences030104 developmental biologyArctic13. Climate actionUltrafine particleSea iceCloud condensation nucleiEnvironmental science14. Life underwaterPolar climate0105 earth and related environmental sciences
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New insights into aerosol and climate in the Arctic

2018

Abstract. Motivated by the need to predict how the Arctic atmosphere will change in a warming world, this article summarizes recent advances made by the research consortium NETCARE (Network on Climate and Aerosols: Addressing Key Uncertainties in Remote Canadian Environments) that contribute to our fundamental understanding of Arctic aerosol particles as they relate to climate forcing. The overall goal of NETCARE research has been to use an interdisciplinary approach encompassing extensive field observations and a range of chemical transport, earth system, and biogeochemical models. Several major findings and advances have emerged from NETCARE since its formation in 2013 . (1) Unexpectedly …

0301 basic medicineArctic haze010504 meteorology & atmospheric sciences15. Life on landMineral dustAtmospheric sciences01 natural sciencesSea surface microlayerAerosol03 medical and health sciences030104 developmental biologyDeposition (aerosol physics)Arctic13. Climate actionMelt pondIce nucleusEnvironmental science0105 earth and related environmental sciences
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Frequent ultrafine particle formation and growth in Canadian Arctic marine and coastal environments

2017

The source strength and capability of aerosol particles in the Arctic to act as cloud condensation nuclei have important implications for understanding the indirect aerosol–cloud effect within the polar climate system. It has been shown in several Arctic regions that ultrafine particle (UFP) formation and growth is a key contributor to aerosol number concentrations during the summer. This study uses aerosol number size distribution measurements from shipboard expeditions aboard the research icebreaker CCGS Amundsen in the summers of 2014 and 2016 throughout the Canadian Arctic to gain a deeper understanding of the drivers of UFP formation and growth within this marine boundary layer. UFP nu…

Atmospheric Sciencegeographygeography.geographical_feature_category010504 meteorology & atmospheric sciences010501 environmental sciences01 natural scienceslcsh:QC1-999Sink (geography)AerosolLatitudelcsh:ChemistryOceanographylcsh:QD1-999Arctic13. Climate actionUltrafine particleSea iceEnvironmental scienceCloud condensation nuclei14. Life underwaterlcsh:PhysicsPolar climate0105 earth and related environmental sciencesAtmospheric Chemistry and Physics
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High gas-phase mixing ratios of formic and acetic acid in the High Arctic

2018

Abstract. Formic and acetic acid are ubiquitous and abundant in the Earth's atmosphere and are important contributors to cloud water acidity, especially in remote regions. Their global sources are not well understood, as evidenced by the inability of models to reproduce the magnitude of measured mixing ratios, particularly at high northern latitudes. The scarcity of measurements at those latitudes is also a hindrance to understanding these acids and their sources. Here, we present ground-based gas-phase measurements of formic acid (FA) and acetic acid (AA) in the Canadian Arctic collected at 0.5 Hz with a high-resolution chemical ionization time-of-flight mass spectrometer using the iodide …

Atmospheric ScienceChemical ionization010504 meteorology & atmospheric sciencesChemical transport modelChemistryFormic acid010501 environmental sciences01 natural scienceslcsh:QC1-999lcsh:ChemistryAtmosphereAcetic acidchemistry.chemical_compoundOvercastlcsh:QD1-999ArcticReagentEnvironmental chemistrylcsh:Physics0105 earth and related environmental sciencesAtmospheric Chemistry and Physics
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