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Research Article Issue
Synthesis of Dense Layer of 21R–SiAlON in Al–Si–Al2O3 Composite Refractory
Journal of the Chinese Ceramic Society 2025, 53(9): 2550-2558
Published: 13 August 2025
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Introduction

Refractories are important supporting materials for high-temperature industries. During high-temperature service, refractories are subjected to severe thermal shock, complex chemical corrosion, and mechanical wear, and must balance superior properties like thermal shock resistance, corrosion resistance, and high strength. However, the key service properties of refractories are often interdependent, such as superior corrosion resistance requiring a dense structure, which sacrifices the thermal shock resistance of the material. The superior thermal shock resistance requires a certain amount of pores to relieve thermal stress, but this reduces the strength and corrosion resistance of the material. Developing novel refractories with gradient composition and structure based on the different service micro-environments of refractory products in different regions, such as cold and hot surfaces, to enhance key service performance in different zones is an important research direction. In this paper, a gradient functional material with “21R-SiAlON dense layer AlN–SiC solid solution reinforced corundum porous structure” was developed based on the sensitivity of metal Al and Si to oxygen partial pressure at high temperatures.

Methods

Tabular alumina (3–1 mm, 1–0 mm; w(Al2O3) > 99.31%; Anmai Aluminum Co., China), α–Al2O3 powder (≤5 μm; w(Al2O3) > 99.28%), active α–Al2O3 powder (≤ 5 μm; w(Al2O3)>99.28%; Anmai Aluminum Co., China), metal aluminum powder (≤ 45 μm; w(Al)>99.77%, Henan Yuayang Co., China) and silicon powder (≤ 45 μm; w(Si)>99.52%; Yingkou Xianren Island Taihe Silicon Co., China) were used as raw materials, with phenolic resin (residual carbon of about 56%, Shengquan Group, China) as a binder. In the preparation, the weighted raw materials were mixed in a planetary mixer for 40 min to obtain uniform mixed slip. Afterwards, Al–Si–Al2O3 composite green brick samples (with the sizes of 230 mm × 113 mm × 65 mm) were obtained by compacting the mixed slip under 200 MPa by a model 630 t friction press. After natural dehydration for 24 h, the sample bricks were dried in a tunnel kiln at 200 ℃ for 12 h. The dried samples were nitriding sintered in a high-temperature nitriding furnace at 1550 ℃ for 3 h.

The phase composition of the sintered samples was analyzed by X-ray diffraction (XRD; Ultima IV, Rigaku Co., Japan). The microstructures of the samples were analyzed by scanning electron microscopy (SEM) in a model NOVA NANOSEM 450 electron microscope (FEI Co., USA). The pore structure of the samples was determined by a model FF35 CT microfocus industrial computered tomography (CT, YXLON International GmbH, Germany).

Results and discussion

Based on the sensitivity of metal Al and Si to oxygen partial pressure at high temperatures, Al–Si–Al2O3 composites are sintered in a nitrogen atmosphere at 1550 ℃for 3 h to prepare a gradient functional material, which is composed of “21R–SiAlON dense layer-AlN–SiC solid solution reinforced corundum with a porous structure”. The synthesis mechanism is analyzed by CT, SEM, and XRD combined with thermodynamic analysis. The results indicate that P(O2) on the surface of the sample is higher, where the “active oxidation to indirect nitridation” mechanism of Al and Si is predominated. Al and Si on the surface layer preferentially undergo active oxidation, generating gaseous sub oxides such as Al2O and SiO, and reducing the local P(O2). 21R–SiAlON is formed via a reaction of metal Al, Si, active α–Al2O3 powder and N2. Under the action of concentration gradient, the preformed gaseous sub-oxides diffuse into the surface layer and react with nitrogen to form 21R–SiAlON, thus promoting the staggered growth of sheet-like 21R–SiAlON and ultimately forming a dense layer (with porosity<4%), which is constructive to the corrosion resistance of the material. As the active oxidation of outer Al and Si consumes O2 layer by layer, P(O2) inside the brick becomes extremely low, and the “direct nitriding/carbonization” reaction mechanism of Al and Si becomes dominant. Al and Si inside the brick react directly with nitrogen and residual carbon of phenolic resin, generating granular AlN–SiC solid solution reinforcement phase in-situ, forming a high-strength porous structure (with a porosity of 15%), which can alleviate a stress concentration caused by temperature gradient and improve thermal shock resistance.

Conclusions

A gradient functional material with a “21R–SiAlON reinforced denselayer—AlN–SiC solid solution reinforced porous structure” was prepared via nitriding Al–Si–Al2O3 composite in a nitrogen atmosphere at 1550 ℃ for 3 h. During sintering, there were two reaction mechanisms for metal Al and Si in different regions of the outer and inner layers of the sample, i.e., the “active oxidation to indirect nitridation” mechanism and the “direct nitridation/carbonization” mechanism in the outer and inner layers resulting in a gradient change in the composition and structure of the material. In the outer layer of the sample, the oxygen partial pressure was higher, and metal Al and Si preferentially underwent an active oxidation, generating gaseous sub oxides (i.e., Al2O, AlO, SiO, etc.), which reduced the oxygen partial pressure. As the oxygen partial pressure decreased, Al powder, Si powder, and α–Al2O3 micro powder reacted with nitrogen to form 21R–SiAlON. Gaseous metastable phases such as Al2O and SiO diffused to the outer layer of the sample to deposition, further promoting the staggered growth and development of sheet-like 21R–SiAlON, forming a dense layer. The porosity of this dense layer was less than 4%, and it was mainly composed of closed micropores. With the consumption of O2 by the outer metal Al and Si of the sample, the oxygen partial pressure inside the sample was reduced to an extremely low level. Metal Al and Si directly reacted with N2 and residual carbon of phenolic resin, generating AlN–SiC solid solution reinforcement phase in-situ. The porosity inside the sample was approximately 15%.

Research Article Issue
Reaction Mechanism of Mineralizers Ferrosilicon Nitride and Calcium Carbonate in Silica Bricks
Journal of the Chinese Ceramic Society 2023, 51(3): 594-601
Published: 08 February 2023
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Silica bricks only used the combined mineralizer of calcium hydroxide and iron scale in the early domestic production. It is feasible and necessary to explore novel mineralizers to improve the performance of silica bricks. In this paper,novel silica bricks were prepared with ferrosilicon nitride and calcium carbonate as mineralizers instead of calcium hydroxide and iron scale. The prepared silica bricks have good properties, and the content of tridymite with 2% ferrosilicon nitride and calcium carbonate added reaches 62% and 65%, respectively. The effects of ferrosilicon nitride and calcium carbonate on the formation of tridymite in silica bricks were investigated by X-ray diffraction and scanning electron microscopy. The results show that in the silica brick with ferrosilicon nitride as mineralizer, Si3N4 network formed by the intertwined columnar Si3N4 in the sea urchin-like structure ferrosilicon nitride protects Fe and Fe3Si through its oxidation reaction, thereby achieving a higher FeO/Fe2O3 ratio and a lower liquid formation temperature in the FeO–Fe2O3–SiO2 ternary phase. The FeO/Fe2O3 ratio in the liquid phase fluctuates at a high temperature, and then the constant change of the solubility of tridymite in the saturated liquid phase promotes the crystallization of tridymite due to the reducibility of Fe, Fe3Si and Si3N4. When calcium carbonate is used as a mineralizer of silicon brick, the formation temperature of the liquid phase in the brick is increased to 1436 ℃. Before that, the reactions in the bricks are mainly the decomposition of calcium carbonate and the transformation from β-quartz to α-quartz and to metastable α-cristobalite. The increase of the formation temperature of the liquid phase does not reduce the content of tridymite in the brick, and the content of glass phase in the brick is less than that in the brick with iron mineralizer.

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