Direct observation of realistic-temperature fuel combustion mechanisms in atomistic simulations.

Chem Sci

Department of Chemistry , University of Antwerp , Universiteitsplein 1, 2610 Antwerp , Belgium . Email:

Published: August 2016

Atomistic simulations can in principle provide an unbiased description of all mechanisms, intermediates, and products of complex chemical processes. However, due to the severe time scale limitation of conventional simulation techniques, unrealistically high simulation temperatures are usually applied, which are a poor approximation of most practically relevant low-temperature applications. In this work, we demonstrate the direct observation at the atomic scale of the pyrolysis and oxidation of -dodecane at temperatures as low as 700 K through the use of a novel simulation technique, (CVHD). A simulated timescale of up to 39 seconds is reached. Product compositions and dominant mechanisms are found to be strongly temperature-dependent, and are consistent with experiments and kinetic models. These simulations provide a first atomic-level look at the full dynamics of the complicated fuel combustion process at industrially relevant temperatures and time scales, unattainable by conventional molecular dynamics simulations.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6020539PMC
http://dx.doi.org/10.1039/c6sc00498aDOI Listing

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