Fused Magnesite CaO/SiO₂ 2/1 Refractory
Fused Magnesite with a CaO/SiO₂ ratio of 2/1 is a high-performance refractory material widely used in industries that require exceptional resistance to high temperatures, thermal shock, and chemical corrosion. This material is produced through the fusion of high-purity magnesite, which is a naturally occurring magnesium carbonate (MgCO₃), along with carefully controlled amounts of calcium oxide (CaO) and silicon dioxide (SiO₂). The resulting product is a dense, homogeneous, and highly durable refractory material with excellent mechanical and thermal properties.The CaO/SiO₂ ratio of 2/1 is a critical factor in determining the material's performance. This specific ratio ensures the formation of stable mineral phases, such as forsterite (Mg₂SiO₄) and monticellite (CaMgSiO₄), which contribute to the material's high refractoriness and resistance to slag attack. The presence of calcium oxide enhances the material's ability to withstand alkaline environments, while the silicon dioxide improves its thermal shock resistance and mechanical strength. The balanced composition also minimizes the formation of low-melting-point phases, ensuring stability at elevated temperatures.Fused Magnesite with a CaO/SiO₂ ratio of 2/1 is particularly suitable for applications in steelmaking, cement production, and non-ferrous metal processing. In steelmaking, it is used in linings for furnaces, ladles, and tundishes, where it provides excellent resistance to the corrosive effects of molten slag and metal. In cement kilns, it serves as a lining material that can withstand the extreme temperatures and chemical reactions involved in clinker production. Additionally, its thermal shock resistance makes it ideal for use in non-ferrous metal processing, where rapid temperature changes are common.The manufacturing process of this refractory material involves the fusion of raw materials in an electric arc furnace at temperatures exceeding 2,800°C (5,072°F). This process ensures the complete melting and homogenization of the components, resulting in a product with a uniform microstructure and minimal impurities. After fusion, the material is cooled, crushed, and graded to produce granules or bricks of the desired size and shape. The final product is characterized by its high density, low porosity, and superior mechanical strength.One of the key advantages of Fused Magnesite with a CaO/SiO₂ ratio of 2/1 is its ability to maintain structural integrity under extreme conditions. Its high thermal conductivity ensures efficient heat transfer, reducing the risk of thermal stress and cracking. Additionally, its chemical stability makes it resistant to attack by acidic and basic slags, extending the service life of refractory linings and reducing maintenance costs.In summary, Fused Magnesite with a CaO/SiO₂ ratio of 2/1 is a versatile and reliable refractory material that offers exceptional performance in high-temperature industrial applications. Its balanced composition, combined with advanced manufacturing techniques, results in a product that meets the demanding requirements of modern industrial processes. Whether used in steelmaking, cement production, or non-ferrous metal processing, this material provides durability, efficiency, and cost-effectiveness, making it a preferred choice for refractory applications.
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Fused Magnesite CaO/SiO2:2/1
Category: Industrial Magnesium Functional MaterialBrowse number: 68Number:Release time: 2025-08-26 16:17:28BrandMgO%≥SiO2%≤CaO%≥Fe2O3%≤LOl%≤B·D(g/cm3)≥Size(mm)MS-9898.000.400.900.500.153.500-300-120 MS-97.597.500.501.000.600.203.50MS-9797.000.701.400.700.203.50MS-9696.000.901.700.900.233.401. Material OverviewFused Magnesite CaO/SiO₂:2/1 is produced by fusing natural magnesite with a precise CaO/SiO₂ ratio at ultra-high temperatures. This results in a dense, highly crystalline material with superior refractory properties.1.1 Key PropertiesPropertyValueUnitChemical FormulaMgO·CaO/SiO₂-CaO/SiO₂ Ratio2/1-Purity (MgO)≥95%%Bulk Density3.4–3.6g/cm³Refractoriness≥2800°CApparent Porosity≤6%%Crystal St...
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