Literature DB >> 25734883

Atmospheric evolution of sulfur emissions from Kı̅lauea: real-time measurements of oxidation, dilution, and neutralization within a volcanic plume.

Jesse H Kroll1, Eben S Cross1, James F Hunter1, Sidhant Pai1, Lisa M M Wallace2, Philip L Croteau3, John T Jayne3, Douglas R Worsnop3, Colette L Heald1, Jennifer G Murphy4, Sheila L Frankel1.   

Abstract

The high atmospheric concentrations of toxic gases, particulate matter, and acids in the areas immediately surrounding volcanoes can have negative impacts on human and ecological health. To better understand the atmospheric fate of volcanogenic emissions in the near field (in the first few hours after emission), we have carried out real-time measurements of key chemical components of the volcanic plume from Kı̅lauea on the Island of Hawai'i. Measurements were made at two locations, one ∼ 3 km north-northeast of the vent and the other 31 km to the southwest, with sampling at each site spanning a range of meteorological conditions and volcanic influence. Instrumentation included a sulfur dioxide monitor and an Aerosol Chemical Speciation Monitor, allowing for a measurement of the partitioning between the two major sulfur species (gas-phase SO2 and particulate sulfate) every 5 min. During trade wind conditions, which sent the plume toward the southwest site, sulfur partitioning exhibited a clear diurnal pattern, indicating photochemical oxidation of SO2 to sulfate; this enabled the quantitative determination of plume age (5 h) and instantaneous SO2 oxidation rate (2.4 × 10(-6) s(-1) at solar noon). Under stagnant conditions near the crater, the extent of SO2 oxidation was substantially higher, suggesting faster oxidation. The particles within the plume were extremely acidic, with pH values (controlled largely by ambient relative humidity) as low as -0.8 and strong acidity (controlled largely by absolute sulfate levels) up to 2200 nmol/m(3). The high variability of sulfur partitioning and particle composition underscores the chemically dynamic nature of volcanic plumes, which may have important implications for human and ecological health.

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Year:  2015        PMID: 25734883     DOI: 10.1021/es506119x

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  4 in total

1.  The Acidity of Atmospheric Particles and Clouds.

Authors:  Havala O T Pye; Athanasios Nenes; Becky Alexander; Andrew P Ault; Mary C Barth; Simon L Clegg; Jeffrey L Collett; Kathleen M Fahey; Christopher J Hennigan; Hartmut Herrmann; Maria Kanakidou; James T Kelly; I-Ting Ku; V Faye McNeill; Nicole Riemer; Thomas Schaefer; Guoliang Shi; Andreas Tilgner; John T Walker; Tao Wang; Rodney Weber; Jia Xing; Rahul A Zaveri; Andreas Zuend
Journal:  Atmos Chem Phys       Date:  2020-04-24       Impact factor: 6.133

2.  Incorporation of volcanic SO2 emissions in the Hemispheric CMAQ (H-CMAQ) version 5.2 modeling system and assessing their impacts on sulfate aerosol over the Northern Hemisphere.

Authors:  Syuichi Itahashi; Rohit Mathur; Christian Hogrefe; Sergey L Napelenok; Yang Zhang
Journal:  Geosci Model Dev       Date:  2021-09-16       Impact factor: 6.135

3.  Acidity across the interface from the ocean surface to sea spray aerosol.

Authors:  Kyle J Angle; Daniel R Crocker; Rebecca M C Simpson; Kathryn J Mayer; Lauren A Garofalo; Alexia N Moore; Stephanie L Mora Garcia; Victor W Or; Sudarshan Srinivasan; Mahum Farhan; Jon S Sauer; Christopher Lee; Matson A Pothier; Delphine K Farmer; Todd R Martz; Timothy H Bertram; Christopher D Cappa; Kimberly A Prather; Vicki H Grassian
Journal:  Proc Natl Acad Sci U S A       Date:  2021-01-12       Impact factor: 11.205

4.  Mapping pollution exposure and chemistry during an extreme air quality event (the 2018 Kīlauea eruption) using a low-cost sensor network.

Authors:  Ben Crawford; David H Hagan; Ilene Grossman; Elizabeth Cole; Lacey Holland; Colette L Heald; Jesse H Kroll
Journal:  Proc Natl Acad Sci U S A       Date:  2021-07-06       Impact factor: 11.205

  4 in total

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