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Cited article:

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A naphtha reforming process development methodology based on the identification of catalytic reactivity descriptors

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New Journal of Chemistry 44 (18) 7243 (2020)
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Dehydrogenation mechanisms of methyl-cyclohexane on γ-Al2O3 supported Pt13: Impact of cluster ductility

Wei Zhao, Céline Chizallet, Philippe Sautet and Pascal Raybaud
Journal of Catalysis 370 118 (2019)
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Dehydrogenation of Methylcyclohexane: Parametric Sensitivity of the Power Law Kinetics

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ISRN Chemical Engineering 2013 1 (2013)
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Oxidative Dehydrogenation of Ethane at Millisecond Contact Times: Effect of H2 Addition

A.S. Bodke, D. Henning, L.D. Schmidt, et al.
Journal of Catalysis 191 (1) 62 (2000)
https://doi.org/10.1006/jcat.1999.2802

Characterisation of Catalysts Used in Wall Reactors for the Catalytic Dehydrogenation of Methylcyclohexane

S. Tschudin, T. Shido, R. Prins and A. Wokaun
Journal of Catalysis 181 (1) 113 (1999)
https://doi.org/10.1006/jcat.1998.2283

Modelling and scaleup of the kinetics with deactivation of methylcyclohexane dehydrogenation for hydrogen energy storage

G. Maria, A. Marin, C. Wyss, S. Muller and E. Newson
Chemical Engineering Science 51 (11) 2891 (1996)
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Influence of the deactivation of an industrial Pt-Sn/Al2O3 catalyst on the performance of the dehydrogenation reactor

J. Chaouki and D. Klvana
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Modélisation de la désactivation du catalyseur Pt-Sn/Al2O3 lors de la déshydrogénation du méthylcyclohexane

J. Chaouki, D. Klvana, T. Pontier and G. Belanger
The Chemical Engineering Journal 46 (3) 109 (1991)
https://doi.org/10.1016/0300-9467(91)87002-R