Compósitos geopoliméricos obtidos pela ativação alcalina de metacaulim e aluminossilicatos de minerais suscetíveis a reações do tipo álcali-agregado
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Universidade Estadual de Ponta Grossa
Abstract
Alkali-activated matrices with Si+Al based precursors or geopolymers are cementitious
composites obtained from the alkaline activation of amorphous aluminosilicates and
present physical-mechanical properties similar to hydrated Portland cement matrices.
The activating solutions are made from alkaline hydroxides and silicates, being
capable of dissolving the precursor materials. For geopolymer precursors, any material
with high amounts of silicon and aluminum and a disordered molecular structure can
be used to produce these matrices, as long it obeys the appropriate Si/Al molar ratios.
This includes materials such as metakaolin, fly ash, red mud and some mineral
aluminosilicates. At the same time, it is well-established knowledge that the use of
amorphous silica-based mineral phases in Na/K rich cementitious matrices can lead to
a degradation mechanism known as the alkali-silica reaction (ASR). This phenomenon
is likely to occur in Portland cement concretes and alkali-activated matrices with Si+Ca
based precursors, where the pathological manifestations of ASR are severe. However,
this is not observed in geopolymers, and given the similarity between their precursors
and the mineral phases that cause ASR, it is possible that the reason for this is that
during the consolidation of geopolymers, the mineral phases are an active phase of
the reaction. In order to verify this hypothesis, the aim of this work was producing
geopolymers made of metakaolin and mineral aggregates susceptible to ASR at
different levels and to analyze the physical, chemical, mechanical and morphological
changes that the products underwent. The methodological procedure was divided into
5 main phases: precursors and alkaline activators statement and preparation;
characterization of these materials and definition of their proportions; geopolymer
samples test moldings; definitive moldings and physical-mechanical characterization;
then finally, chemical and microstructural characterization of the products. Two
pulverized and sieved mineral aggregates with metakaolin were used as precursors,
and sodium hydroxide and sodium silicate as activators. These precursors were
chemically characterized by XRF, XRD, FTIR and Raman spectroscopy. After the initial
test and validation of the defined materials ratio, all the remaining specimens were
molded to be physical and mechanical characterized by their immersion water
absorption and axial and diametrical rupture. Finally, chemical characterization was
carried out and microstructural characterization by scanning electron microscopy. The
results indicate that the presence of mineral aggregates in geopolymers reduces or
increases their mechanical strength depending on the percentage of metakaolin
replacement, age and curing temperature. Water absorption is drastically reduced in
geopolymers composed of aggregates, indicating that there is a reduction in capillary
pores in the matrix when metakaolin is replaced. Chemical and molecular
characterization indicates that some of the mineral phases of the aggregates have the
same chemical bonds as crystalline geopolymers, and the replacement of metakaolin
with aggregates leads to the formation of zeolites in the matrices when cured at 80 oC.
Microstructural characterization showed that the aggregates act as nucleation centers
for the geopolymer product, or dissolve in the alkaline medium to produce the
geopolymer. It was concluded that aggregates susceptible to ASR can be used as
geopolymer precursors, but in-depth studies to ensure efficient mechanical properties
are still required.
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VALENGA, Matheus Villian. Compósitos geopoliméricos obtidos pela ativação alcalina de metacaulim e aluminossilicatos de minerais suscetíveis a reações do tipo álcali-agregado. 2023. Dissertação (Mestrado em Engenharia e Ciência de Materiais) - Universidade Estadual de Ponta Grossa, Ponta Grossa, 2023.
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