Literature DB >> 14740719

Chasing quicksilver: modeling the atmospheric lifetime of Hg(0)(g) in the marine boundary layer at various latitudes.

Ian M Hedgecock1, Nicola Pirrone.   

Abstract

The lifetime of elemental mercury in the marine boundary layer(MBL) has been studied using AMCOTS (Atmospheric Mercury Chemistry Over The Sea), a box model of MBL photochemistry including aerosols and detailed mercury chemistry. Recently measured Hg(0)(g) oxidation reactions have been included, and the studies were performed as a function of latitude, time of year, boundary layer liquid water content (LWC) and cloud optical depth. The results show that Hg has the shortest lifetime when air temperatures are low and sunlight and deliquescent aerosol particles are plentiful. Thus the modeled lifetime for clear-sky conditions is actually shorter at mid-latitudes and high latitudes than near the equator, and for a given latitude and time of year, cooler temperatures enhance the rate of Hg oxidation. Under typical summer conditions (for a given latitude) of temperature and cloudiness, the lifetime (tau) of Hg(0)(g) in the MBL is calculated to be around 10 days at all latitudes between the equator and 60 degrees N. This is much shorter than the generally accepted atmospheric residence time for Hg(0)(g) of a year or more. Given the relatively stable background concentrations of Hg(0)(g) which have been measured, continual replenishment of Hg(0)(g) must take place, suggesting a "multihop" mechanism for the distribution of Hg, rather than solely aeolian transport with little or no chemical transformation between source and receptor. Inclusion of an empirical Hg(0)(g) emission factor related to insolation was used to stabilize the Hg(0)(g) concentration in the model, and the emission rates necessarily agree well with estimated emission fluxes for the open ocean.

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Year:  2004        PMID: 14740719     DOI: 10.1021/es034623z

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


  4 in total

1.  Development and application of a regional-scale atmospheric mercury model based on WRF/Chem: a Mediterranean area investigation.

Authors:  Christian Natale Gencarelli; Francesco De Simone; Ian Michael Hedgecock; Francesca Sprovieri; Nicola Pirrone
Journal:  Environ Sci Pollut Res Int       Date:  2013-10-30       Impact factor: 4.223

2.  Seasonal variation and spatial distribution of atmospheric mercury and its gas-particulate partition in the vicinity of a semiconductor manufacturing complex.

Authors:  Yi-Hsiu Jen; Wei-Hsiang Chen; Chung-Shin Yuan; Iau-Ren Ie; Chung-Hsuang Hung
Journal:  Environ Sci Pollut Res Int       Date:  2014-01-10       Impact factor: 4.223

3.  Mercury in the Mediterranean, part I: spatial and temporal trends.

Authors:  Jože Kotnik; Francesca Sprovieri; Nives Ogrinc; Milena Horvat; Nicola Pirrone
Journal:  Environ Sci Pollut Res Int       Date:  2013-12-13       Impact factor: 4.223

4.  Atmospheric mercury concentrations observed at ground-based monitoring sites globally distributed in the framework of the GMOS network.

Authors:  Francesca Sprovieri; Nicola Pirrone; Mariantonia Bencardino; Francesco D'Amore; Francesco Carbone; Sergio Cinnirella; Valentino Mannarino; Matthew Landis; Ralf Ebinghaus; Andreas Weigelt; Ernst-Günther Brunke; Casper Labuschagne; Lynwill Martin; John Munthe; Ingvar Wängberg; Paulo Artaxo; Fernando Morais; Henrique de Melo Jorge Barbosa; Joel Brito; Warren Cairns; Carlo Barbante; María Del Carmen Diéguez; Patricia Elizabeth Garcia; Aurélien Dommergue; Helene Angot; Olivier Magand; Henrik Skov; Milena Horvat; Jože Kotnik; Katie Alana Read; Luis Mendes Neves; Bernd Manfred Gawlik; Fabrizio Sena; Nikolay Mashyanov; Vladimir Obolkin; Dennis Wip; Xin Bin Feng; Hui Zhang; Xuewu Fu; Ramesh Ramachandran; Daniel Cossa; Joël Knoery; Nicolas Marusczak; Michelle Nerentorp; Claus Norstrom
Journal:  Atmos Chem Phys       Date:  2016-09-23       Impact factor: 6.133

  4 in total

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