Title of article
Isothermal reduction kinetics of nickel oxide using hydrogen: Conventional and Weibull kinetic analysis Original Research Article
Author/Authors
B. Jankovi?، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2007
Pages
14
From page
2233
To page
2246
Abstract
The powder sample of nickel oxide was synthesized by sol–gel procedure. The isothermal reduction of nickel oxide using hydrogen was investigated by thermogravimetric analysis at five operating temperatures: 245, 255, 265, 275 and 300 °C. The kinetic triplet (Ea, A and f(α)) was determined using conventional and Weibull kinetic analysis. Both the kinetically procedures show that the reduction process considered can be explained with a two-step kinetic model. It is established that at lower temperatures (245 °C⩽T⩽255 °C), the reduction process considered is governed by two-parameter Šesták-Berggren autocatalytic model (first step) and at higher temperatures (T⩾265 °C), the reduction process is governed by Fn reaction model with different values of parameter n (second step). In this paper, the complex manner of dependence of the Weibull shape parameter (β) on temperature is established. With alterations of Weibull shape parameter from lower temperatures (β>1) to higher temperatures (β<1), it was concluded that isothermal reduction process of NiO using hydrogen can be described by a multistep reaction mechanism. These results are confirmed by the evaluated density distribution functions (ddf) of apparent activation energies (Ea), which show variations in basic characteristics at lower and higher operating temperature regions. Also, in this paper, it was shown that the shape parameter (β) of Weibull distribution function can represent the behaviour index, which indicates the kinetic pattern of the mechanism controlling the process studied.
Keywords
Oxides , Surface properties , Thermogravimetric analysis (TGA)
Journal title
Journal of Physics and Chemistry of Solids
Serial Year
2007
Journal title
Journal of Physics and Chemistry of Solids
Record number
1309958
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