Activation, Deactivation, and Poisoning of Catalysts - download pdf or read online

By John B. Butt

ISBN-10: 0121476952

ISBN-13: 9780121476953

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Physical and Chemical Description of Deactivation 7. 8. 9. 10. J. J. , p. 124 (1974). M. Faraday, Philos. Trans. R. Soc. London. 124, 55 (1834). S. Fuentes and J. C. S. S. Faraday I 74, 174 (1978). S. J. Gregg and K. S. W. " Academic Press, New York, 1967. W. B. Innes, in "Experimental Methods in Catalysis Research" (R. B. ), Chap. 2. Academic Press, New York, 1968. H. Pines and W. O. Haag, J. Am. Chem. Soc. 82, 2471 (1960). P. A. Sermon and G. C. Bond, Catal. Rev. 8, 211 (1973). M. Shelef, K. Otto, and N.

Reinhold, New York, 1955. 11. 12. 13. 14. 15. 16. 17. 18. CHAPTER 2 Mathematical Description of Deactivating Systems Some aspire to gain immortality through their work. I want to be immortal by not dying. Woody Allen The approach to be taken here is largely an extension of that used by catalytic chemists endeavoring to understand a reaction taking place on a heterogeneous catalyst. , the detailed path) that the molecules follow during reaction, and finally to measure the rates at which the various reactions occur.

2-90). Note that this leads to a relationship between a and / that could be far more nonlinear than Eq. (2-90). For these and perhaps other reasons, many functional forms have been used to describe deactivation, and repĀ­ resentative examples are presented below. Pease and Stewart (16) correlated the poisoning of a copper catalyst for ethylene hydrogenation using carbon monoxide by the relationship a = e-kil~f) (2-91) This function was able to represent their data adequately; however, the choice was not based on a theoretical model.

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Activation, Deactivation, and Poisoning of Catalysts by John B. Butt


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