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Silicon Nitride Bonded Silicon Carbide Brick
Ceramic Industry& other industries

Silicon Nitride Bonded Silicon Carbide Brick

Silicon nitride bonded silicon carbide brick is a high-performance refractory material with SiC as aggregate and Si₃N₄ as binder. It features excellent high-temperature resistance (up to 1600℃), superior wear & corrosion resistance, and low thermal expansion. Widely used in metallurgy, ceramics, petrochemical & power industries, it ensures stable operation of kilns, boilers & reactors, prolongs equipment service life , and reduces maintenance costs effectively. A reliable refractory solution for harsh industrial environments.

  • Item: Si₃N₄-SiC Brick

Core Advantages

Exceptional High-Temperature Stability

With a maximum service temperature of 1600℃ and refractoriness up to 1750℃, the silicon nitride bonded silicon carbide brick maintains structural integrity and stable performance under long-term high-temperature operation, without deformation or cracking even in extreme thermal environments.

Superior Wear & Corrosion Resistance

High-purity SiC aggregate (content ≥85%) and dense Si₃N₄ bonding phase form a robust structure, which can resist severe wear from high-speed airflow, dust, and molten media, as well as erosion from acidic, alkaline, and reducing atmospheres.

Excellent Thermal Shock Resistance

Low thermal expansion coefficient (3.5-4.5×10⁻⁶/℃) enables the brick to withstand frequent cold-heat cycles (1100℃ water quenching test ≥25 times) without peeling or damage, adapting to intermittent operation equipment.

High Structural Strength & Long Service Life

The unique Si₃N₄ bonding system enhances the brick’s compressive strength (≥35MPa) and flexural strength (≥8MPa), making it not easy to break during installation and use. Its service life is 2-3 times longer than that of ordinary silicon carbide bricks.


Product Parameters

Item SiC Brick Si₃N₄-SiC Brick
SiC % ≥88 ≥80 ≥72
Si₃N₄ % / / ≥18
g/cm³
Bulk Density
≥2.60 ≥2.58 2.60-2.70
%
Apparent Porosity
≤17 ≤18 ≤16
(1200℃)w/(m.k)
Thermal conductivity
13.2 12 /
MPa
Cold Crushing Strength
≥110 ≥100 ≥180
Thermal shock stability (1100℃ cooling)times ≥50 ≥40 ≥30
℃(0.2MPa,0.6%)
Refractoriness Under Load
1700 1700 /

Detailed Application Scenarios

1. Metallurgical Industry

◎ Our silicon nitride bonded silicon carbide brick is widely used in blast furnace tuyere sleeves, hot blast stove linings, converter mouth linings, and continuous casting tundish nozzles. This high-temp wear-resistant refractory brick can withstand high-temperature airflow erosion and molten steel scouring, effectively prolonging the service life of key metallurgical equipment  and reducing shutdown maintenance time. It is a reliable high-performance refractory solution for harsh metallurgical working conditions.

2. Ceramics & Building Materials Industry

◎ Suitable for ceramic tunnel kiln cars, roller kiln inner linings, glass furnace regenerator checker bricks, and cement rotary kiln tertiary air ducts, our silicon nitride bonded silicon carbide brick resists high-temperature wear and dust erosion. This refractory brick ensures uniform furnace temperature, improves the qualification rate of ceramic, glass, and cement products, and maintains stable performance in long-term high-temperature operation.

3. Petrochemical Industry

Our silicon nitride bonded silicon carbide brick is applied to catalytic cracking reactor linings, reformer tubes, and high-temperature flue gas pipelines. As a corrosion-resistant refractory material, it can withstand the erosion of high-temperature, high-pressure, and corrosive media (such as sulfur-containing gas), ensuring the safe and continuous operation of petrochemical equipment and reducing maintenance costs.

4. Power Industry

Used in circulating fluidized bed (CFB) boiler linings, boiler cyclone separators, and ash discharge pipes, our silicon nitride bonded silicon carbide brick excels in resisting the wear of high-speed fly ash and high-temperature flue gas. This high-temp refractory brick reduces boiler maintenance frequency, improves power generation efficiency, and is a cost-effective choice for power plants.

Conclusion

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