Literature DB >> 30064212

Mixing State of Carbonaceous Aerosols of Primary Emissions from "Improved" African Cookstoves.

Yuchieh Ting1, Edward J S Mitchell2, James D Allan1,3, Dantong Liu1, Dominick V Spracklen4, Alan Williams2, Jenny M Jones2, Amanda R Lea-Langton5, Gordon McFiggans1, Hugh Coe1.   

Abstract

Designs of "improved" stoves are introduced recently to benefit the solid fuel consumption of cooking activities in developing countries, but the uncertainties concerning the combustion processes and particulate emissions remain poorly characterized. To help understand this, combustion in three examples of "improved" African cookstoves was investigated in the laboratory. A typical European heating stove was included for comparison purpose. Detailed aerosol emissions were studied in real-time with an Aerosol Mass Spectrometer and Single Particle Soot Photometer, to explore interactions between black carbon (BC) and organic carbon aerosols, which were parametrized according to modified combustion efficiency (MCE), a common metric used within the atmospheric emission community. Greater than 50% of the total organic matter (OM) was found in BC-containing particles when MCE was >0.95 for dry oak and coal fuels, whereas at lower MCE, over 80% of the total OM for most of the fuels existed in particles without detectable BC. When the OM mass fraction of total particulate matter (PM1) > 0.9, the mass ratio of OM to refractory BC in BC-containing particles was about 2-3, but only ∼0.8 when OM mass fraction <0.9. These findings are not currently included in models and such information should be considered in the future emission scenarios.

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Year:  2018        PMID: 30064212     DOI: 10.1021/acs.est.8b00456

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


  1 in total

1.  Tourism-induced emission in Sub-Saharan Africa: A Panel Study for Oil-Producing and Non-oil-Producing countries.

Authors:  Festus Victor Bekun; Bright Akwasi Gyamfi; Ruth Oluyemi Bamidele; Edmund Ntom Udemba
Journal:  Environ Sci Pollut Res Int       Date:  2022-01-31       Impact factor: 5.190

  1 in total

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