info:eu-repo/semantics/article
A dynamic analysis of the aluminum titanate (Al2TiO5) reaction-sintering from alumina and titania, properties and effect of alumina particle size
Fecha
2020-01-11Registro en:
Violini, María Agustina; Hernández, Maria Florencia; Conconi, María Susana; Suarez, Gustavo; Rendtorff Birrer, Nicolás Maximiliano; A dynamic analysis of the aluminum titanate (Al2TiO5) reaction-sintering from alumina and titania, properties and effect of alumina particle size; Springer; Journal of Thermal Analysis and Calorimetry; 143; 11-1-2020; 95-101
1388-6150
1588-2926
CONICET Digital
CONICET
Autor
Violini, María Agustina
Hernández, Maria Florencia
Conconi, María Susana
Suarez, Gustavo
Rendtorff Birrer, Nicolás Maximiliano
Resumen
Aluminum titanate Al2TiO5 materials were successfully processed from diferent fne commercial powders and characterized. Particularly, two calcined aluminas were compared through a multitechnique approach including diferential thermal analysis and dilatometry together with structural, microestructural, and mechanical characterization. This allowed the description of all the thermochemical processes during thermal treatment. Developed phases were established. Relatively dense ceramics were obtained, and complex microstructures were described with interlocked grains and an interconnected microcrack matrix that do not jeopardize the material integrity. Multistep sintering and reaction sintering processes were observed in both samples. The frst stage consists of the sintering of the starting powders (alumina and titania). A second sintering stage of the starting powders was observed for both samples as well. Once advanced, the second one is overlapped with Al2TiO5 formation that starts at 1380 °C and fnishes at 1440 °C. They afect crack development and, in consequence, the thermal behavior. The lower alumina particle size enhances the sintering and reaction advance processes. In the technological temperature range (room temperature?1000 °C), low or even negative thermal expansion behaviors were observed in the developed materials. This, together with the mechanical behavior, encourages structural applications with high thermomechanical solicitations of Al2TiO5 based materials.