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    Designing Colloidal Silica-Bonded Porous Structures of In-situ Mullite for Thermal Insulation
    (Springer, 2020-09-01)
    Abstract: Colloidal silica (CS) is a promising raw material for refractory castable ceramics. It consists of stable suspensions of synthetic amorphous silica nanoparticles that behave simultaneously as liquid medium and binder for ceramic particles and as a porogenic agent and highly reactive source of silica to promote in-situ reactions. The setting mechanism of CS balances two opposite effects. Adding more CS to a suspension increases the bonding potential for gelling reactions and strengthening; on the other hand, it also introduces more water into the system, enhancing pore content. Such effects can be advantageously employed in the preparation of porous structures from aqueous suspensions and applied as high-temperature thermal insulators. The present study addresses the production of porous structures of in-situ mullite attained from aqueous suspensions of highly porous transition alumina particles bonded with colloidal silica. Different grades of CS and transition aluminas were combined to present suitable workability (flowability and gelling time) and to generate stoichiometric mullite or mullite-alumina porous structures after sintering.
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    Spark plasma sintered step graded Al2O3–NbC composites
    (Elsevier, 2021-07-15)
    Functionally graded materials (FGM) present enormous potential to combine materials with distinct mechanical and thermal properties in a component via a compositional gradient throughout the body. In the present work, step graded Al2O3/NbC composites were assessed in order to obtain a FGM with high hardness and good fracture toughness. Step graded uniaxially pressed cylinders were consolidated by Spark plasma sintering (SPS) into fully dense (>99% TD) crack-free graded bodies. The designed gradient was successfully maintained after sintering and, due to the high density of FGMs, it was possible to obtain a high hardness up to 25.1 GPa and a good fracture toughness of ~5 MPa m1/2.
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    Microstructure Evolution of Porous Calcium Hexaluminate Compacts During First Heating
    (Elsevier BV, 2023-11-23)
    Porous calcium hexaluminate (CaAl 12 O 19 or CA 6 ) structures show long-term stability at high temperatures, high refractoriness, low thermal conductivity , and excellent chemical resistance, thus being Taylor-made for thermal insulation . Previous works attained porous structures from in situ formation of CA 6 combining CaO and Al 2 O 3 sources in solid-state reactive sintering. Although the approach is time-and-energy-saving regarding the production of large parts of complex shapes, it faces considerable difficulties related to the expansive formation of calcium aluminates. To overcome such drawbacks, pre-formed porous CA 6 aggregates improve the system's dimensional stability before sintering. Despite the straightforward processing, few studies have investigated such materials systemically. This article addresses the combination of pre-formed porous CA 6 aggregates and organic and inorganic binders for the production of porous structures by two shaping processes, namely, uniaxial pressing and direct casting of aqueous suspensions. After drying, the samples' microstructure and physical properties evolution were investigated up to sintering (1100-1500 °C) through total porosity, Young's modulus , compression strength , pore diameter, and thermal conductivity measurements, dilatometric analyses, and scanning electron microscopy. Reference samples of coarse calcined alumina were tested under the same conditions to highlight the impacts of CA 6 particles' morphology. Compared to them, the CA 6 -containing samples showed almost no variation in total porosity and average pore size levels during thermal treatments, although their strength and rigidity increased significantly after sintering. Their microstructure remained practically unchanged after drying, showing clusters of large asymmetrical CA 6 crystals bonded to each other by their edges, and surrounding a large fraction of 1.8–2.2 μm pores. According to the results, although water content, processing method, and compacting levels are important parameters, particles' microstructure, ratio of intra-particle pores, and asymmetrical shape are key variables for the development of physical properties. Such characteristics strongly contributed to their densification resistance and lower thermal conductivity after exposure to high temperatures.
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    Experimental investigation of seawater exposure and specimen geometry effects on the mechanical performance of 3D-printed ABS and ABS/CF
    (Springer Science+Business Media, 2026-06-01)
    In this work, the effects of seawater exposure and specimen geometry on the mechanical performance of 3D-printed Acrylonitrile Butadiene Styrene (ABS) and carbon fiber-reinforced ABS (ABS/CF) were investigated. Enclosed 3D printers were used to avoid shrinkage and warping of ABS and ABS/CF. The standard specimen types in this research work were ASTM D638 type IV, ISO 527-2 type 1BA, and ASTM D3039 full-section specimens. The tensile tests were strain-controlled tests with a strain rate of 0.1 min− 1. Firstly, the effects of the different specimen types on the tensile strength and Young’s modulus of unaged (as-printed) ABS and ABS/CF were analyzed. Secondly, the three types of specimens were immersed in seawater for 1, 2, and 3 weeks to evaluate moisture absorption and the degradation of the mechanical properties. The results indicated that the test specimen type had a statistically significant effect on the mechanical properties of ABS and ABS/CF, with the ISO 527 specimen exhibiting the lowest tensile strength and Young’s modulus. Moreover, all ABS and ABS/CF specimens showed moisture uptake of less than 1%. After three weeks of exposure, the ABS and ABS/CF retained over 90% of their mechanical properties. The good retention of mechanical properties and moisture resistance makes these materials suitable for short-term marine applications.