Universiti Teknologi Malaysia Institutional Repository

Development of a kinetic model for hydrogen production from phenol over Ni-Co/ZrO2 catalyst

Nabgan, W. and Mat, R. and Abdullah, T. A. T. and Nabgan, B. and Gambo, Y. and Zakaria, Z. Y. (2016) Development of a kinetic model for hydrogen production from phenol over Ni-Co/ZrO2 catalyst. Journal of Environmental Chemical Engineering, 4 (4). pp. 4444-4452. ISSN 2213-3437

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Abstract

Study on the kinetics of steam reforming of phenol was performed over a Ni-Co/ZrO2 catalyst. It provides basis for the optimization of reactors design for better phenol conversion and H2 yield. An effect of temperature, catalyst weight, phenol concentrations in the feed, and the volumetric feed flow rate on the catalyst activity and reaction rate have been investigated in detail and were explored through experiment. At the present reaction conditions, the reaction was found to be free from mass and heat transfer limitations. The reaction order was determined through a power law kinetic model based on the Langmuir-Hinshelwood-Hougen-Watson (LHHW) and Eley-Rideal (ER) postulations. The kinetic constants and activation energy were arrived at through a non-linear regression approach. It has been found that the reaction rate depends strongly on phenol concentration. The phenol conversion process was found to have activation energy 102.27 J/mol. 6 models were developed with 2 being eliminated due to predictive efficiency. From mechanistic point of view, both of the phenol and steam behaved based on non-dissociative adsorption.

Item Type:Article
Uncontrolled Keywords:Activation energy, Catalysts, Chemical activation, Heat transfer, Hydrogen production, Kinetic parameters, Kinetic theory, Kinetics, Nickel, Phenols, Rate constants, Reaction kinetics, Reaction rates, Steam reforming, Dissociative adsorption, Effect of temperature, Kinetic modeling, Langmuir-Hinshelwood-Hougen-Watson, Mass and heat transfers, Non-linear regression, Optimization of reactors, Phenol concentration, Catalyst activity
Subjects:T Technology > TP Chemical technology
Divisions:Chemical Engineering
ID Code:71820
Deposited By: Narimah Nawil
Deposited On:16 Nov 2017 05:40
Last Modified:16 Nov 2017 05:40

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