## Abstract A numerical model for the carburization of iron in COβH~2~βHe mixtures was developed and compared with experimental data over the temperature range of 850Β°Cβ1150Β°C, CO partial pressures from 1% to 12%, and H~2~ partial pressures from 5% to 99%. The reaction mechanism was established on
Iron carburization in CO-H2-He gases, Part I: Experiment
β Scribed by Zhe Wang; Richard A. Yetter
- Publisher
- John Wiley and Sons
- Year
- 2009
- Tongue
- English
- Weight
- 316 KB
- Volume
- 41
- Category
- Article
- ISSN
- 0538-8066
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β¦ Synopsis
Abstract
Carburization of iron was studied at atmospheric pressure over the temperature range 850Β°C to 1150Β°C in gaseous mixtures of CO, H~2~, and He. The resistance relaxation method was applied to measure the carburization rates. Experimental results show that for carburization in COβHe mixtures, the carburization rate increased proportionally with CO partial pressure with a reaction order of unity. The overall rate also increased with temperature up to approximately 960Β°C and subsequently decreased with further increases in temperature. For carburization in COβH~2~βHe mixtures, the carburization rate increased with both the CO and H~2~ partial pressures under most conditions and was considerably faster than the rate in mixtures without hydrogen. Up to approximately 960Β°C, the rate was nearly independent of temperature with H~2~ present, but decreased with a further increase in temperature. The decrease in reaction rate for mixtures with and without H~2~ at 960Β°C coincides closely with the change in phase of iron from Ξ± to Ξ³. Experiments at 925Β°C with constant P and P~CO~ indicate that CO dissociation on the iron surface is faster than oxygen removal from the surface except at high ratios of P/P~CO~, and therefore oxygen removal was generally the rateβlimiting step. The rate of oxygen removal from the surface by H~2~ was found to be of the same order as that by CO. At high hydrogen levels, the rate of oxygen removal exceeds dissociative absorption of CO and the latter becomes rate controlling. The present results are used to establish a numerical model for the carburization of iron, which is described in a companion paper. Β© 2009 Wiley Periodicals, Inc. Int J Chem Kinet 41: 327β336, 2009
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