293
Views
2
CrossRef citations to date
0
Altmetric
Original Articles

Elementary Reaction Modeling of Methane Catalytic Combustor: Effects of Hysteresis in Pd-Based Catalyst Activity

, , &
Pages 1044-1064 | Received 10 Mar 2014, Accepted 19 Dec 2014, Published online: 09 Apr 2015

REFERENCES

  • Bartholomew, C. H., and Robert J. F. 2011. Fundamentals of Industrial Catalytic Processes. Wiley-AIChE, New York.
  • Bayer, G., and Wiedemann, H. G. 1975. Formation, dissociation and expansion behavior of platinum group metal-oxides (PdO, RuO2, IrO2). Thermochim. Acta, 11(2), 79–88.
  • Beretta, A., Baiardi, P., Prina, D., and Forzatti, P. 1999. Analysis of a catalytic annular reactor for very short contact times. Chem. Eng. Sci., 54(6), 765–773.
  • Burch, R., Crittle, D. J., and Hayes, M. J. 1999. C-H bond activation in hydrocarbon oxidation on heterogeneous catalysts. Catal. Today, 47(1), 229–234.
  • Burch, R., Loader, P. K., and Urbano, F. J. 1996. Some aspects of hydrocarbon activation on platinum group metal combustion catalysts. Catal. Today, 27(1), 243–248.
  • Carstens, J. N., Su, S. C., and Bell, A. T. 1998. Factors affecting the catalytic activity of Pd/ZrO2 for the combustion of methane. J. Catal., 176(1), 136–142.
  • Ciuparu, D., Lyubovski, M. R., Altman, E., Pfefferle, L. D., and Datye, A. 2002. Catalytic combustion of methane over palladium-based catalysts. Catal. Rev., 44(4), 593–649.
  • Ciuparu, D., and Pfefferle, L. 2001. Support and water effects on palladium based methane combustion catalysts. Appl. Catal., A, 209(1), 415–428.
  • Datye, A. K., Bravo, J., Nelson, T. R., Atanasova, P., Lyubovsky, M., and Pfefferle, L. 2000. Catalyst microstructure and methane oxidation reactivity during the Pd <-> PdO transformation on alumina supports. Appl. Catal., A, 198(1), 179–196.
  • Drozdov, V.A., Tsyrulnikov, P. G., Popovskii, V. V., Bulgakov, N. N., Moroz, E. M., and Galeev T. G. 1985. Comparative study of the activity of Al− Pd and Al− Pt catalysts in deep oxidation of hydrocarbons. React. Kinet. Catal. Lett., 27(2), 425–427.
  • Farrauto, R. J., Hobson, M. C., Kennelly, T., and Waterman, E. M. 1992. Catalytic chemistry of supported palladium for combustion of methane. Appl. Catal., A, 81(2), 227–237.
  • Groppi, G., Cristiani, C., Lietti, L., and Forzatti, P. 2000. Study of PdO/Pd transformation over alumina supported catalysts for natural gas combustion. Stud. Surf. Sci. Catal., 130, 3801–3806.
  • Hellman, A., Resta, A., Martin, N. M., Gustafson, J., Trinchero, A., Carlsson, P. A., Balmes, O., Felici, R., Van Rijn, R., Frenken, J. W. M., Andersen, J. N., Lundgren, E., and Gronbeck. 2012. The active phase of palladium during methane oxidation. J. Phys. Chem. Lett., 3(6), 678–682.
  • Hicks, R. F., Qi, H. H., Young, M. L., and Lee, R. G. 1990. Effect of catalyst structure on methane oxidation over palladium on alumina. J. Catal., 122(2), 295–306.
  • Lee, J. H., and Trimm, D. L. 1995. Catalytic combustion of methane. Fuel Process. Technol., 42(2), 339–359.
  • Lyubovsky, M., and Pfefferle, L. 1998. Methane combustion over the alpha-alumina supported Pd catalyst: Activity of the mixed Pd/PdO state. Appl. Catal., A, 173(1), 107–119.
  • Muller, C. A., Maciejewski, M., Koeppel, R. A., and Baiker, A. 1997. Combustion of methane over palladium/zirconia derived from a glassy Pd-Zr alloy: Effect of Pd particle size on catalytic behavior. J. Catal., 166(1), 36–43.
  • Persson, K., Pfefferle, L. D., Schwartz, W., Ersson, A., and Jaras, S. G. 2007. Stability of palladium-based catalysts during catalytic combustion of methane: The influence of water. Appl. Catal., B, 74(3), 242–250.
  • Salomons, S., Hayes, R. E., Poirier, M., and Sapoundjiev, H. 2004. Modelling a reverse flow reactor for the catalytic combustion of fugitive methane emissions. Comput. Chem. Eng., 28(9), 1599–1610.
  • Seyed-Reihani, S. A. 2005. Evaluating surface mechanisms for catalytic combustion of H2 and CH4 on Pd catalysts. PhD dissertation,University of Maryland, College Park.
  • Todd, B., and Young, J. B. 2002. Thermodynamic and transport properties of gases for use in solid oxide fuel cell modelling. J. Power Sources, 110(1), 186–200.
  • Todorova, M., Reuter, K., and Scheffler, M. 2004. Oxygen overlayers on Pd(111) studied by density functional theory. J. Phys. Chem. B, 108(38), 14477–14483.
  • Wakao, N., and Kaguei, S. 1982. Heat and Mass Transfer in Packed Beds, Gordon and Breach, London.
  • Wolf, M. M., Zhu, H. Y., Green, W. H., and Jackson, G. S. 2003. Kinetic model for polycrystalline Pd/PdOx in oxidation/reduction cycles. Appl. Catal., A, 244(2), 323–340.
  • Yao, Y. F. Y. 1980. Oxidation of alkanes over noble-metal catalysts.Ind. Eng. Chem. Prod. Res. Dev.,19(3), 293–298.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.