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Kinetic study of the kaolinite-mullite reaction sequence. Part I: Kaolinite dehydroxylation

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TLDR
In this paper, the authors investigated the decomposition reaction of kaolinite as a function of the defectivity of the starting material and the temperature of reaction, and the results of the analysis of the kinetic data indicate that the starting reaction mechanism is controlled by diffusion in the particle.
Abstract
The decomposition reaction of kaolinite has been investigated as a function of the defectivity of the starting material and the temperature of reaction. Time resolved energy-dispersive powder diffraction patterns have been measured using synchrotron radiation, both under a constant heating rate (heating rates from 10 to 100° C/min) and in isothermal conditions (in the temperature range 500 to 700° C). The apparent activation energy of the dehydroxylation process is different for kaolinites exhibiting a different degree of stacking fault density. The results of the analysis of the kinetic data indicate that the starting reaction mechanism is controlled by diffusion in the kaolinite particle. The diffusion process is dependent on the defective nature of both kaolinite and metakaolinite. At high temperatures, and at higher heating rates, the reaction mechanism changes and the resistance in the boundary layer outside the crystallites becomes the rate-limiting factor, and nucleation begins within the reacting particle. During the final stage of the dehydroxylation process the reaction is limited by heat or mass transfer, and this might be interpreted by the limited diffusion between the unreacted kaolinite domains and the metakaolinite matrix.

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Citations
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Adsorption of dyes using different types of clay: a review

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Supplementary Cementitious Materials

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Transformation plasticity and the effect of temperature on the mechanical behaviour of Hawkesbury sandstone at atmospheric pressure

TL;DR: In this article, the authors performed uniaxial compressive strength testing of Hawkesbury sandstone at various temperatures between 25 and 950°C to explore the mechanical response of the sandstone to significant changes in temperature for enhanced geothermal energy systems, nuclear waste disposal and underground coal gasification.
Journal ArticleDOI

The influence of heating rate on the thermal behaviour and mullite formation from a kaolin raw material

TL;DR: In this article, the thermal behavior of a Bio kaolin raw material (Bio) containing mainly well-crystallised kaolinite and muscovite minerals was studied in relation to heating rate, from 3 to 20°C min −1.
Journal ArticleDOI

Dehydroxylation of Kaolinite to Metakaolin - A Molecular Dynamics Study

TL;DR: In this article, the thermally induced transformation of metakaolin is simulated using molecular dynamics through a step-wise dehydroxylation approach, which is characterized by a loss of crystallinity and a concomitant change in aluminium coordination from octahedral to tetrahedral.
References
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Book

Chemical Reaction Engineering

TL;DR: An overview of Chemical Reaction Engineering is presented, followed by an introduction to Reactor Design, and a discussion of the Dispersion Model.
Journal ArticleDOI

Method of Comparing Solid‐State Kinetic Data and Its Application to the Decomposition of Kaolinite, Brucite, and BaCO3

TL;DR: In this article, a method of comparing the kinetics of isothermal solid-state reactions based on the classical equation for analysis of nucleation-and growth processes is described, where plots of In In (1-α) vs In (time), where α is the fraction reacted, are used to distinguish reaction mechanisms.
Book

Phase transitions in ferroelastic and co-elastic crystals

TL;DR: In this paper, it was shown that the thermodynamic order parameter is only in exceptional cases the spontaneous strain and that coupling between several order parameters is an essential feature of many ferroelastic and co-elastic phase transitions.
Journal ArticleDOI

Outstanding Problems in the Kaolinite-Mullite Reaction Sequence Investigated by 29Si and 27Al Solid-state Nuclear Magnetic Resonance: I, Metakaolinite

TL;DR: In this article, a new model for metakaolinite is proposed, consisting of anhydrous regions of distorted AI-0 tetrahedra containing randomly distributed isolated residual hydroxyls associated with A1-0 configurations of regular octahedral and tetrahedral symmetry.
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