(730e) Kinetics of Hydrocarbon Steam Reforming over Mn-Cr-O Spinel Oxides | AIChE

(730e) Kinetics of Hydrocarbon Steam Reforming over Mn-Cr-O Spinel Oxides

Authors 

Yang, L. - Presenter, University of Virginia
Jones, C. - Presenter, Georgia Institute of Technology
Bukhovko, M. P., Aramco Services Company: Aramco Research Center - Boston
Brezicki, G., University of Virginia
Malek, A., The Dow Chemical Company
Li, L., The Dow Chemical Company
Agrawal, P. K., Georgia Institute of Technology
Davis, R. J., University of Virginia
Steam cracking of hydrocarbons is an important route to produce olefins, but coke formation significantly impedes the economy of the process. In particular, the buildup of coke in the reactor tubes increases pressure drop and decreases heat transfer in the cracker. The reactor tubes composed of Fe-Cr-Ni metal alloys form a surface barrier layer of MnCr2O4-Cr2O3 upon oxidative pretreatment, but little is known about the reactivity of this barrier layer. In this work, we have synthesized and characterized a series of Mn-Cr-O spinel oxides with different stoichiometry (MnxCr3-xO4, x = 0.5, 1.0, 1.5). Their catalytic performance in steam reforming of various hydrocarbons was evaluated and compared to pure oxides.

The excess Cr existed as Cr2O3 in the Cr-rich Mn0.5Cr2.5O4 sample, whereas no crystalline Mn oxide phase was detected in the Mn-rich Mn1.5Cr1.5O4 sample. Results from XPS and EXAFS suggest the excess Mn exists as Mn3+, which resides in the octahedral sites of the spinel lattice as a substitution for Cr3+. While Mn3O4 underwent in situ reduction to MnO during reaction, the Mn-Cr-O spinel catalysts were structurally stable and active for both ethylene steam reforming and toluene steam reforming. The reforming rate was first order in hydrocarbon and nearly zero order in steam in both cases. Toluene steam reforming was strongly inhibited by excess H2 (nearly negative first order) whereas no appreciable effect of excess H2 was observed during ethylene steam reforming. The apparent activation energy of toluene steam reforming was substantially higher compare to that of ethylene steam reforming over all three spinel catalysts. The rate of propylene and benzene steam reforming was also investigated over the MnCr2O4 catalyst and was comparable to that of ethylene and toluene steam reforming under similar conditions.