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THE METAL POISONING EFFECT ON THE PERFORMANCE OF FCC CATALYSTS UNDER REAL OPERATING CONDITIONS

Lect. Dr. Timur Chis

First published: 2016-06-28https://doi.org/10.5593/sgem2016/b13/s06.124View metrics

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Title
THE METAL POISONING EFFECT ON THE PERFORMANCE OF FCC CATALYSTS UNDER REAL OPERATING CONDITIONS
Authors
Lect. Dr. Timur Chis
Proceedings
SGEM International Multidisciplinary Scientific GeoConference EXPO Proceedings; 16th International Multidisciplinary Scientific GeoConference SGEM2016, Science and Technologies in Geology, Exploration and Mining
Publisher
Stef92 Technology
Year
2016
Pages
979-986
ISSN
1314-2704
ISBN
978-619-7105-57-5
Language
en
Publication type
Conference Paper
References26
  1. Cristiano-Torres, D.V., Osorio- Pérez Y., Palomeque - Forero L.A., Sandoval- Díaz L.E., Trujillo C.A., The action of vanadium over Y zeolite in oxidant and dry atmosphere, Applied Catalysis A : General, vol. 346, pp. 104-111, 2008

  2. Cerqueira H.S., Caeiro G., Costa L., Ramôa Ribeiro F., Dea ctivation of FCC catalysts, Journal of Molecular Catalysis A:Chemical,vol.292, pp.1-13, 2008

  3. Busca, G., Riani P., Garbarino G., Ziemacki G., Gambino L., Montanari E., Millini R., The state of nickel in spent Fluid Cracking Catalysts, Applied Catalysis A : General, vol. 486, pp. 176-186, 2014

  4. Pinto F.V., Escobar AS., De Oliviera B.G, Lam Y.L., Cerqueira H.S., Louis B., Tessonnier J.P., Su D.S., Pereira M.M., The effect of alumina on FCC catalyst in the presence of nickel and vanadium, Applied Catalysis A : General, vol. 388, pp. 15-21,

  5. Wu L., Khalil F., Smith G.M., Yilmaz B., McGuire Jr. R., Effect of solvent on the impregnation of contaminant nickel for laboratory deactivation of FCC catalysts, Microporous and Mesoporous Materials, vol. 207, pp. 195-199, 2015

  6. Lappas A.A., Nalbandian L., Iatridis D.K., Voutetakis S.S., Vasalos I.A., Effect of metals poisoning on FCC products yields;studies in an FCC short contact time pilot plant unit, Catalysis Today, vol.65, pp.233-240, 2001

  7. Wormsbecher R.F., Peters A.W., Maselli J.M., Vanadium poisoning of cracking catalysts: mechanism of poisoning and design of vanadium tolerant catalyst system, Journal of Catalysis, vol. 100, pp.130-137, 1986

  8. Sadeghbeigi R., Fluid catalytic cracking handbook, Third edition, Elsevier, 2012, pp. 51-113

  9. Du X., Li X., Zhang H., Gao X., Kinetics study and analysis of zeolite Y destruction, Chinese Journal of Catalysis, vol. 37, pp.316-323, 2016

  10. Rainer D.R., Rautiainen, E., Imhof, P., Novel lab-scale deactivation method for FCC catalyst: inducing realistic accessibility responses to iron poisoning, Applied Catalysis A: General, vol. 249, pp. 69-80, 2003

  11. Mathieu Y., Corma A., Echard M., Bories M., Single and combined Fluidized Catalytic Cracking (FCC) catalyst deactivation by iron and calcium metallic – organic contaminants, Applied Catalysis A: General, vol. 469, pp. 451-465, 2014

  12. Luo P., Wang X., Yongan Gub Y., Characterization of asphaltenes precipitated with three light alkanes under different experimental conditions, Fluid Phase Equilibria , vol. 291, pp.103 –110, 2010

  13. Weckhuysen B.M., Keller D.E., Chemistry, spectroscopy and the role of supported vanadium oxides in heterogenous catalysis, Catalysis Today, vol. 78, pp 25-46, 2003 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

  14. Cristiano-Torres, D.V., Osorio- Pérez Y., Palomeque - Forero L.A., Sandoval- Díaz L.E., Trujillo C.A., The action of vanadium over Y zeolite in oxidant and dry atmosphere, Applied Catalysis A : General, vol. 346, pp. 104-111, 2008

  15. Cerqueira H.S., Caeiro G., Costa L., Ramôa Ribeiro F., Dea ctivation of FCC catalysts, Journal of Molecular Catalysis A:Chemical,vol.292, pp.1-13, 2008

  16. Busca, G., Riani P., Garbarino G., Ziemacki G., Gambino L., Montanari E., Millini R., The state of nickel in spent Fluid Cracking Catalysts, Applied Catalysis A : General, vol. 486, pp. 176-186, 2014

  17. Pinto F.V., Escobar AS., De Oliviera B.G, Lam Y.L., Cerqueira H.S., Louis B., Tessonnier J.P., Su D.S., Pereira M.M., The effect of alumina on FCC catalyst in the presence of nickel and vanadium, Applied Catalysis A : General, vol. 388, pp. 15-21,

  18. Wu L., Khalil F., Smith G.M., Yilmaz B., McGuire Jr. R., Effect of solvent on the impregnation of contaminant nickel for laboratory deactivation of FCC catalysts, Microporous and Mesoporous Materials, vol. 207, pp. 195-199, 2015

  19. Lappas A.A., Nalbandian L., Iatridis D.K., Voutetakis S.S., Vasalos I.A., Effect of metals poisoning on FCC products yields;studies in an FCC short contact time pilot plant unit, Catalysis Today, vol.65, pp.233-240, 2001

  20. Wormsbecher R.F., Peters A.W., Maselli J.M., Vanadium poisoning of cracking catalysts: mechanism of poisoning and design of vanadium tolerant catalyst system, Journal of Catalysis, vol. 100, pp.130-137, 1986

  21. Sadeghbeigi R., Fluid catalytic cracking handbook, Third edition, Elsevier, 2012, pp. 51-113

  22. Du X., Li X., Zhang H., Gao X., Kinetics study and analysis of zeolite Y destruction, Chinese Journal of Catalysis, vol. 37, pp.316-323, 2016

  23. Rainer D.R., Rautiainen, E., Imhof, P., Novel lab-scale deactivation method for FCC catalyst: inducing realistic accessibility responses to iron poisoning, Applied Catalysis A: General, vol. 249, pp. 69-80, 2003

  24. Mathieu Y., Corma A., Echard M., Bories M., Single and combined Fluidized Catalytic Cracking (FCC) catalyst deactivation by iron and calcium metallic – organic contaminants, Applied Catalysis A: General, vol. 469, pp. 451-465, 2014

  25. Luo P., Wang X., Yongan Gub Y., Characterization of asphaltenes precipitated with three light alkanes under different experimental conditions, Fluid Phase Equilibria , vol. 291, pp.103 –110, 2010

  26. Weckhuysen B.M., Keller D.E., Chemistry, spectroscopy and the role of supported vanadium oxides in heterogenous catalysis, Catalysis Today, vol. 78, pp 25-46, 2003 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

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