4.7 Article

Optimization of CO2 reforming of methane process for the syngas production over Ni-Ce/TiO2-ZrO2 catalyst using the Taguchi method

Journal

INTERNATIONAL JOURNAL OF HYDROGEN ENERGY
Volume 46, Issue 44, Pages 22799-22812

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijhydene.2021.04.091

Keywords

CO2 reforming of methane; Taguchi design; Optimization; Catalyst; Syngas

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In this study, the Taguchi method was used to optimize the process conditions for CO2 reforming of methane over the Ni-Ce/TiO2-ZrO2 catalyst. The results showed that the operating temperature had a significant effect on the performance index, with higher Zr content and lower reduction temperature favoring enhanced performance.
In the present study, Taguchi method-based design of experiment with L9 orthogonal array was implemented to optimize the process conditions for CO2 reforming of methane over the Ni-Ce/TiO2-ZrO2 catalyst. The catalyst composition, catalyst reduction temperature, reaction operating temperature, and the CO2/CH4 ratio of the reactant gas were the control parameters. The performance index was considered as the response of the Taguchi experiment. The performance index was calculated by considering the product gas H-2/CO ratio, deactivation factor, carbon deposition, and maximum CH4 conversion. The catalysts were prepared in two steps using the evaporation-induced self-assembly and urea deposition-precipitation methods. The catalysts were characterized in their fresh and spent stages using various techniques like X-ray diffraction, N-2-physisorption, H-2 temperature-programmed reduction, inductively coupled plasma-mass spectroscopy, Scanning electron spectroscopy, Transmission electron spectroscopy, and Thermogravimetric analysis. The results showed that the operating temperature had the principal effect on the performance index. The optimal conditions from signal/noise ratio analysis were Cat3 catalyst with Ti/Zr ratio of 1:3, catalyst reduction temperature of 600 degrees C, the operating temperature of 800 degrees C, and feed gas ratio as CO2/CH4 = 2. Higher Zr content in the catalyst support and the lower reduction temperature favor enhancing the performance index. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.

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