Article ID Journal Published Year Pages File Type
6679312 Proceedings of the Combustion Institute 2015 8 Pages PDF
Abstract
A fundamental reversible model for nucleation and condensation is developed through the use of statistical mechanics and the results from several recent works. The model is highly sensitive to both the binding energy and the vibration frequencies created during the nucleation and condensation processes, although reasonable values are obtained through an extensive literature review. A model for tracking the PAHs on the surface of soot particles is developed, which allows for the calculation of the reverse rate of nucleation and condensation. The inclusion of reversibility in the nucleation and condensation subroutines enables the model to accurately reproduce all relevant soot morphological parameters determined experimentally for the atmospheric pressure, laminar, ethylene-air Santoro flame. This is due to more accurate partitioning of PAH mass through the nucleation and condensation processes. The developed reversible model represents an advancement in fundamental soot formation modeling by replacing tunable constants with fundamental physics.
Related Topics
Physical Sciences and Engineering Chemical Engineering Chemical Engineering (General)
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