Bedoukian   RussellIPM   RussellIPM   Piezoelectric Micro-Sprayer


Home
Animal Taxa
Plant Taxa
Semiochemicals
Floral Compounds
Semiochemical Detail
Semiochemicals & Taxa
Synthesis
Control
Invasive spp.
References

Abstract

Guide

Alphascents
Pherobio
InsectScience
E-Econex
Counterpart-Semiochemicals
Print
Email to a Friend
Kindly Donate for The Pherobase

« Previous AbstractHydrothermal deposition as a novel method for the preparation of Co-Mn mixed oxide catalysts supported on stainless steel meshes: application to VOC oxidation    Next AbstractNanofibrous membranes comprising intrinsically microporous polyimides with embedded metal-organic frameworks for capturing volatile organic compounds »

Faraday Discuss


Title:Including phase separation in a unified model to calculate partitioning of vapours to mixed inorganic-organic aerosol particles
Author(s):Topping D; Barley M; McFiggans G;
Address:"National Centre for Atmospheric Science (NCAS), University of Manchester, Oxford Road, Manchester M13 9PL, England. david.topping@manchester.ac.uk Centre for Atmospheric Science (CAS), School of Earth, Atmospheric and Environmental Science (SEAES), University of Manchester, Oxford Road, Manchester M13 9PL, England"
Journal Title:Faraday Discuss
Year:2013
Volume:165
Issue:
Page Number:273 - 288
DOI: 10.1039/c3fd00047h
ISSN/ISBN:1359-6640 (Print) 1359-6640 (Linking)
Abstract:"A simple approach to calculate liquid-liquid phase separation has been developed based on the derivation of partitioning coefficients between multiple liquid phases and inclusion in a framework used to partition an arbitrary number of compounds between the vapour and particle phases in an atmospheric aerosol. The representation compares favourably with a more complex and expensive benchmark gas-particle thermodynamic model for simple well-constrained systems. The model has then been applied to consider liquid phase separation in multicomponent particles formed by the equilibration of organic products generated by a near-explicit model of VOC oxidation. Inclusion of phase separation decreases the predicted mass of condensed organic material by -10 to -50%, dependent on the concentration of semi-volatile components and ambient conditions in the model scenario. The current study considers only two liquid phases, but the framework can readily accommodate an arbitrary number, though this is beyond the scope of the current work. Uncertainty introduced by the omission of phase separation is far lower than existing uncertainties in pure component vapour pressures, where orders of magnitude differences in predicted mass are found, though the bias introduced when choosing a particular method for estimating the saturation vapour pressure will influence the magnitude of phase separation. The proposed technique is the first to be used to practically deal with the many hundreds or thousands of components present in the ambient atmospheric aerosol"
Keywords:"Aerosols/*chemistry Gases/*chemistry Inorganic Chemicals/*chemistry *Models, Chemical Organic Chemicals/*chemistry;"
Notes:"MedlineTopping, David Barley, Mark McFiggans, Gordon eng Research Support, Non-U.S. Gov't England 2013/01/01 Faraday Discuss. 2013; 165:273-88. doi: 10.1039/c3fd00047h"

 
Back to top
 
Citation: El-Sayed AM 2024. The Pherobase: Database of Pheromones and Semiochemicals. <http://www.pherobase.com>.
© 2003-2024 The Pherobase - Extensive Database of Pheromones and Semiochemicals. Ashraf M. El-Sayed.
Page created on 27-12-2024