Volume 119, 2002

Time-dependent master equation simulation of complex elementary reactions in combustion: Application to the reaction of 1CH2 with C2H2 from 300–2000 K

Abstract

Computational simulations of the title reaction are presented, covering a temperature range from 300 to 2000 K. At lower temperatures we find that initial formation of the cyclopropene complex by addition of methylene to acetylene is irreversible, as is the stabilisation process [italic v (to differentiate from Times ital nu)]ia collisional energy transfer. Product branching between propargyl and the stable isomers is predicted at 300 K as a function of pressure for the first time. At intermediate temperatures (1200 K), complex temporal evolution involving multiple steady states begins to emerge. At high temperatures (2000 K) the timescale for subsequent unimolecular decay of thermalized intermediates begins to impinge on the timescale for reaction of methylene, such that the rate of formation of propargyl product does not admit a simple analysis in terms of a single time-independent rate constant until the methylene supply becomes depleted. Likewise, at the elevated temperatures the thermalized intermediates cannot be regarded as irreversible product channels. Our solution algorithm involves spectral propagation of a symmetrised version of the discretized master equation matrix, and is implemented in a high precision environment which makes hitherto unachievable low-temperature modelling a reality.

Article information

Article type
Paper
Submitted
19 Mar 2001
First published
07 Sep 2001

Faraday Discuss., 2002,119, 159-171

Time-dependent master equation simulation of complex elementary reactions in combustion: Application to the reaction of 1CH2 with C2H2 from 300–2000 K

T. J. Frankcombe and S. C. Smith, Faraday Discuss., 2002, 119, 159 DOI: 10.1039/B102562G

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