The Effect of Adding Six Kinds of Micro Powders on the Properties of High Alumina Refractory Castables

Industrially, unshaped refractories with Al₂O₃ ≥ 45% are generally referred to as high-alumina unshaped refractories. Rongsheng Refractory Castable Manufacturer. High-alumina castables are also classified into three grades based on Al₂O₃ content: Grade 1 has an Al₂O₃ content greater than 75%; Grade 2 has an Al₂O₃ content of 60%–75%; and Grade 3 has an Al₂O₃ content of 48%–60%. Their main mineral components are corundum, mullite, and a glassy phase.

High-Alumina Refractory Castables Manufacturer
High-Alumina Refractory Castables Manufacturer

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    Factors Affecting the Performance of High-Alumina Castables

    Many factors affect the performance of high-alumina castables, primarily the composition of the raw materials and construction conditions. Regarding raw material composition, the performance of the castable can be optimized by controlling the structure, particle size, component content, or type of binder of the aggregates, and by adding appropriate amounts of fine powder and admixtures. In terms of construction, factors such as the amount of water added during construction and the baking conditions also affect the performance of the castable.

    The Influence of Fine Powders in Castables on Their Performance

    Castables typically incorporate various fine powders, which, through the combined action of binders and additives, form a matrix. The particle size and amount of fine powders affect the matrix structure. Since the matrix is ​​most susceptible to erosion by the medium, it is often the first component to be damaged under stress. Therefore, it is necessary to optimize the state of the fine powders to improve their reaction with other components in the matrix, allowing them to bind aggregates and fill voids after high-temperature treatment, achieving close packing and promoting sintering. This, in turn, improves the room-temperature physical properties and performance of high-alumina castables. The fine powders added to high-alumina castables mainly include silicon powder, silicon carbide micropowder, Al powder, and Al₂O₃ micropowder.

    Silica Micro-powder in Refractory Castable
    Silica Micro-powder in Refractory Castable

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      Effects of Silica Powder Addition on Castable Properties

      High-alumina castables were prepared using bauxite particles as aggregate, with the addition of bauxite fine powder and silica powder, and calcium aluminate cement and p-Al₂O₃ micropowder as binders. The effects of silica powder addition (1%, 3%, and 5%) on various properties of the high-alumina castables were investigated. The study found that with increasing silica powder addition, the flowability of the castable decreased, and the linear shrinkage rate after firing increased. Appropriate silica powder addition can improve the creep resistance of the castable. This is because silica powder is oxidized during high-temperature heat treatment, and the oxidized silicon reacts with the matrix components in a mullitization reaction, causing the volume of the castable to expand and the linear shrinkage rate to increase. When the molar ratio of Al₂O₃ to SiO₂ in the matrix reaches a certain value, after the mullitization reaction is complete, the newly added SiO₂ glass phase will reduce the creep resistance of the castable.

      The effect of elemental silica powder addition on ultra-low cement-bonded high-alumina castables was also investigated. The samples were subjected to high-temperature heat treatment in oxidizing, neutral, and reducing atmospheres. It was found that increasing the amount of elemental silicon powder gradually increased the high-temperature flexural strength of the samples after firing, especially after heat treatment in a neutral atmosphere where the change in flexural strength was most significant. The introduced silicon powder reacted in situ in an oxidizing atmosphere to form columnar mullite, in a reducing atmosphere to form silicon carbide whiskers, and in a nitrogen-neutral atmosphere to form fibrous silicon nitride. These in-situ formed phases significantly improved the strength of the castable.

      Different amounts of silicon powder were introduced into traditional high-alumina castables, and heat treatment was performed under oxidizing, carbon-embedded, and nitriding atmospheres to investigate the effect of silicon powder on the strength properties of the castables. After heat treatment at 1450℃, the bulk density of the samples under the three atmospheres decreased slightly with increasing silicon powder content. With increasing silicon powder content, the room-temperature flexural strength of the samples gradually decreased under oxidizing and reducing atmospheres and after heat treatment at 1450℃, while the room-temperature flexural strength of the samples significantly increased after heat treatment in a nitriding atmosphere. The high-temperature flexural strength increased with increasing silica powder content under all three atmospheres, with the highest strength observed in the nitriding atmosphere and the lowest in the oxidizing atmosphere. With continuous introduction of silica powder, the sample under the oxidizing atmosphere gradually expanded, while the sample under the nitriding atmosphere initially contracted and then expanded, and the sample under the reducing atmosphere continued to contract. In summary, heat treatment under the nitriding atmosphere had the least impact on the permanent linear shrinkage rate of the castable. With increasing silica powder content, the sample heat-treated under the reducing atmosphere exhibited the best thermal shock resistance, followed by the sample heat-treated under the nitriding atmosphere.

      Influence of SiC Micropowder Addition on Castable Properties

      In preparing high-alumina castables, high-grade bauxite was used as aggregate, pure calcium aluminate cement as binder, and α-Al₂O₃ micropowder, SiO₂ micropowder, corundum fine powder, and SiC fine powder were added as main raw materials. The effect of varying SiC micropowder addition on the properties of the high-alumina castable was studied. The results showed that the water requirement of the castable increased with the addition of SiC micropowder. Therefore, excessive addition of SiC micropowder has an adverse effect on the low-temperature flexural strength of castables. At high temperatures, a liquid phase forms on the surface of the castable, reducing its strength and wear resistance. Appropriate addition of fine SiC powder is beneficial to improving the cold-state flexural strength of the castable. The amount of water added increases with decreasing SiC particle size; the easier the castable is to sinter, the higher its cold-state flexural strength, and the better its thermal shock resistance. This is because a gap structure is created around the SiC particles, which is more conducive to improving the thermal shock resistance of the castable.

      In the preparation of high-alumina castables, using high-grade bauxite clinker, SiC, and silica micropowder as the main raw materials, and calcium aluminate cement as the binder, the effects of silicon carbide addition (1%, 2%, 3%, 4%, and 5%) on the room-temperature physical properties, thermal shock resistance, flexural strength, and slag resistance of the high-alumina castables were studied. The results show that the addition of SiC improves the strength of the castable, especially its thermal shock resistance. After various temperature treatments, the apparent porosity of the castable generally decreased while the bulk density increased with increasing SiC content. With the addition of SiC, the flexural strength of the samples after heat treatment at 1350℃ continuously increased, while the compressive strength reached its maximum at a SiC content of 3%, and then showed a downward trend. After heat treatment at 1500℃, the flexural strength of the samples first increased and then decreased; after the SiC content reached 3%, the compressive strength of the samples gradually decreased. The corrosion resistance of the samples with added SiC at high temperatures is unstable. This is because SiC can be oxidized at low temperatures, and a SiO₂ protective film forms on the surface of the samples at high temperatures, providing some protection. However, when the temperature continues to rise, the SiO₂ protective film is destroyed, causing damage to the material.

      The Effect of Fly Ash Powder Addition on Castable Properties

      With the development of the power industry, fly ash is currently one of the industrial wastes with the largest discharge volume. This study investigated the effects of introducing fly ash into high-alumina castables (0, 2%, 4%, 6%, 8%, and 10%) on the microstructure and various properties of the castables. The results showed that with increasing fly ash addition, the room-temperature flexural strength of the high-alumina castable continuously decreased, the bulk density significantly decreased, the apparent porosity increased, and the thermal conductivity decreased. This is because the addition of fly ash reduces the pore size of the samples. When a certain amount is added, the pore size is adjusted to the micrometer scale and uniformly distributed in the matrix, improving the material’s thermal insulation performance and effectively reducing heat loss.

      The Effect of SiO₂ Micropowder Addition on Castable Properties

      In the preparation of high-alumina castables, bauxite clinker and coke were used as aggregates, α-Al₂O₃ micropowder and SiO₂ micropowder were used as matrix materials, and high-alumina cement was used as binder. The effect of the amount of SiO₂ micropowder added on the properties of high-alumina castables was investigated. The study showed that the addition of an appropriate amount of SiO₂ micropowder reduced the water demand of the castable, achieving a certain water-reducing effect, and maintaining good flowability. Excessive addition led to powder agglomeration, making it difficult for the internal components of the castable to achieve a good bonding effect, and increasing the water demand, thus reducing the flowability. The cold flexural strength and compressive strength of the castable generally increased with the addition of SiO₂ micropowder, while the apparent porosity gradually increased, the bulk density decreased, and the linear shrinkage rate after firing remained stable.

      The effect of adding SiO₂ micropowder of different specifications on the properties of high-alumina castables was also studied. Studies have found that the addition of SiO₂ micropowder of different specifications leads to significant differences in the rheological properties of castables. Larger SiO₂ micropowder particle sizes are more detrimental to the rheological properties of the castable, resulting in decreased flexural strength and compressive strength at room temperature. However, the specific surface area of ​​SiO₂ micropowder has a relatively small impact on the rheological properties of the castable.

      High-alumina castables were prepared using high-alumina homogeneous material, activated alumina micropowder, and SiO₂ micropowder as the main raw materials, and calcium aluminate cement as the binder. The effect of SiO₂ micropowder addition on the castable properties was investigated. Results showed that the flexural strength and compressive strength of the castable at room temperature first increased and then decreased with the addition of SiO₂ micropowder. After heat treatment at 1100℃, the apparent porosity of the castable first decreased and then increased with the increase of SiO₂ micropowder, the bulk density first increased and then decreased, the linear change rate increased, and the wear amount first decreased and then increased. The castable exhibits the best wear resistance when the SiO₂ powder content is 6%.

      The Effect of Fly Ash Powder Addition on Castable Properties

      With the development of the power industry, fly ash is currently one of the industrial wastes with the largest discharge volume. This study investigated the effects of introducing fly ash into high-alumina castables (0, 2%, 4%, 6%, 8%, and 10%) on the microstructure and various properties of the castables. The results showed that with increasing fly ash addition, the room-temperature flexural strength of the high-alumina castable continuously decreased, the bulk density significantly decreased, the apparent porosity increased, and the thermal conductivity decreased. This is because the addition of fly ash reduces the pore size of the samples. When a certain amount is added, the pore size is adjusted to the micrometer scale and uniformly distributed in the matrix, improving the material’s thermal insulation performance and effectively reducing heat loss.

      The Effect of SiO₂ Micropowder Addition on Castable Properties

      In the preparation of high-alumina castables, bauxite clinker and coke were used as aggregates, α-Al₂O₃ micropowder and SiO₂ micropowder were used as matrix materials, and high-alumina cement was used as binder. The effect of the amount of SiO₂ micropowder added on the properties of high-alumina castables was investigated. The study showed that the addition of an appropriate amount of SiO₂ micropowder reduced the water demand of the castable, achieving a certain water-reducing effect, and maintaining good flowability. Excessive addition led to powder agglomeration, making it difficult for the internal components of the castable to achieve a good bonding effect, and increasing the water demand, thus reducing the flowability. The cold flexural strength and compressive strength of the castable generally increased with the addition of SiO₂ micropowder, while the apparent porosity gradually increased, the bulk density decreased, and the linear shrinkage rate after firing remained stable.

      The effect of adding SiO₂ micropowder of different specifications on the properties of high-alumina castables was also studied. Studies have found that the addition of SiO₂ micropowder of different specifications leads to significant differences in the rheological properties of castables. Larger SiO₂ micropowder particle sizes are more detrimental to the rheological properties of the castable, resulting in decreased flexural strength and compressive strength at room temperature. However, the specific surface area of ​​SiO₂ micropowder has a relatively small impact on the rheological properties of the castable.

      High-alumina castables were prepared using high-alumina homogeneous material, activated alumina micropowder, and SiO₂ micropowder as the main raw materials, and calcium aluminate cement as the binder. The effect of SiO₂ micropowder addition on the castable properties was investigated. Results showed that the flexural strength and compressive strength of the castable at room temperature first increased and then decreased with the addition of SiO₂ micropowder. After heat treatment at 1100℃, the apparent porosity of the castable first decreased and then increased with the increase of SiO₂ micropowder; the bulk density first increased and then decreased, the linear change rate increased, and the wear amount first decreased and then increased. The castable exhibits the best wear resistance when the SiO₂ powder content is 6%.

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        The Influence of the Addition of Five Aggregates on the Properties of High-Alumina Refractory Castables

        Unshaped refractories offer advantages over shaped refractories in production, construction, energy conservation, and environmental protection. Their production volume and application proportion within the overall refractory materials industry reflect the technological development of the refractory materials sector.

        Refractory castables are the most widely used type of unshaped refractories, primarily applied in industries such as petroleum, chemical, steel, building materials, and thermal equipment. They are classified by material into high-alumina castables, magnesia castables, and alumina-magnesia castables, typically composed of four parts: aggregate, fine powder, binder, and additives. Due to their advantages of high-efficiency production, simple construction, and ease of subsequent repair, castables are increasingly used in industry. They can be delivered dry and then poured on-site with water or other liquids, facilitating the casting of kilns with complex structural shapes.

        High-Quality High Alumina Castable of Rongsheng
        High-Quality High Alumina Castable of Rongsheng

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          High-alumina Unshaped Refractories

          Industrially, unshaped refractories with Al₂O₃ ≥ 45% are generally referred to as high-alumina unshaped refractories. High-alumina castables are also classified into three grades based on their Al₂O₃ content: Grade 1 has an Al₂O₃ content greater than 75%; Grade 2 has an Al₂O₃ content of 60%–75%; and Grade 3 has an Al₂O₃ content of 48%–60%. Their main mineral composition is corundum, mullite, and a glassy phase. Traditional high-alumina castables have certain limitations in application. Due to their high cement content, although they can achieve high mechanical strength under medium and low temperature conditions, the increased CaO content lowers the load softening temperature and worsens the thermal shock resistance. Furthermore, controlling the amount of water added is crucial for high-alumina castables; otherwise, the initial strength of the castable will be significantly affected.

          Currently, high-alumina castables are trending towards low-cement and cement-free castables. Low-cement castables have a lower calcium content than traditional high-alumina castables, which reduces the formation of eutectic phases in the material. Low-cement castables improve the refractoriness, thermal shock stability, slag erosion resistance, and high-temperature strength of traditional high-alumina castables, resulting in a denser structure and reduced porosity.

          Many factors influence the performance of high-alumina castables, primarily the composition of the raw materials and construction conditions. Regarding raw material composition, the performance of the castable can be optimized by controlling the structure, particle size, component content, and type of binder of the aggregates, and by adding appropriate amounts of fine powder and admixtures. In terms of construction, factors such as the amount of water added and the baking conditions also affect the performance of the castable.

          Rongsheng High Alumina Castables Refractory
          Rongsheng High Alumina Castables Refractory

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            The Influence of Aggregates on the Performance of Castables

            China has relatively abundant high-alumina bauxite resources, which are typically used as the main aggregate in high-alumina castables. With the vigorous development of energy conservation and environmental protection, high-alumina castables are also evolving towards high efficiency and energy saving. The most important aspect of this is the optimization of aggregates. This is achieved by replacing heavy aggregates with lightweight ones, optimizing low- and medium-grade high-alumina bauxite, or comprehensively utilizing industrial waste to better meet the production needs of high-alumina castables. This not only addresses the current shortage of high-grade bauxite reserves and improves the utilization rate of related resources, but also optimizes and improves the various properties of high-alumina castables.

            The Effects of Electrofused Ceramsite Sand and High-Alumina Bauxite Composite Aggregates on Castable Properties

            Using industrial waste electrofused ceramsite sand and high-alumina bauxite as composite aggregates, and premium bauxite powder, silica fume, and activated alumina powder as fine powders, and calcium aluminate cement as binder, this study investigated the effects of the addition amount of the substitute aggregate, electrofused ceramsite sand (0, 10%, 19%, and 28%), on the flowability and room-temperature physical properties of high-alumina castables. The results showed that with increasing electrofused ceramsite sand content, the water requirement of the castable decreased, flowability increased, and bulk density decreased. After heat treatment at 1100℃ and 1450℃, respectively, the room-temperature compressive strength and flexural strength of the castables tended to increase, while thermal shock resistance initially increased and then decreased.

            The Influence of Alumina Homogenized Aggregate on Castable Properties

            Alumina homogenized aggregate was prepared from low- to medium-grade bauxite raw materials through a homogenization and purification process. High-alumina castables were then prepared using both the homogenized aggregate and traditional bauxite clinker as aggregates, and their properties were compared. The study shows that the physicochemical properties of the homogenized aggregate are not affected by particle size, and it is more uniform and stable than bauxite clinker. Furthermore, the high-alumina castable prepared using homogenized aggregate as aggregate contains well-crystallized mullite and corundum as main mineral phases, resulting in better matrix bonding. Compared to the high-alumina castable prepared using bauxite clinker as aggregate, it exhibits better high-temperature mechanical properties and wear resistance.

            The Influence of High-Strength Microporous Bauxite Aggregate on Castable Properties

            The properties of high-alumina castables prepared from two types of high-strength microporous lightweight bauxite aggregates with different bulk densities were studied in practical applications and compared with those of high-alumina castables prepared from ordinary lightweight bauxite aggregates. The study found that the lower the density of the microporous lightweight bauxite aggregate, the lower the bulk density and the higher the apparent porosity of the prepared high-alumina castable. Compared with ordinary lightweight bauxite aggregate, microporous bauxite aggregate significantly improved the flexural strength and compressive strength of the castable after high-temperature treatment. However, it had little effect on the flexural strength under medium- and low-temperature treatment. The thermal conductivity of high-strength microporous bauxite aggregate at 500℃ was slightly higher than that of ordinary lightweight bauxite aggregate. However, as the temperature increased, the difference in thermal conductivity between the two became negligible, which is related to the change in porosity of the castable. High-strength microporous bauxite aggregate is more conducive to maintaining the volumetric stability of the castable and reducing the linear shrinkage rate. Taking all factors into consideration, increasing the Al₂O₃ content and micropore number of lightweight bauxite aggregate can significantly improve the performance of castables.

            The Influence of Bauxite-Mullite-Hollow Sphere Aggregate on Castable Properties

            The influence of bauxite-mullite-hollow sphere aggregate on the properties of high-alumina castables was studied. The results show that gradually replacing lightweight mullite with multiphase hollow spheres (0%, 10%, 20%, 30%, and 40%) reduces the water requirement of the castable as the replacement ratio increases. Simultaneously, it significantly improves the room-temperature compressive strength of high-alumina castables while reducing their bulk density and thermal conductivity.

            The Influence of Alumina-Andalusite Aggregate on Castable Properties

            The effect of adding andalusite to high-alumina castables on their properties was investigated. The results show that with increasing andalusite content, andalusite reacts in situ to form mullite, and the resulting volume expansion generates stress, causing microcracks within the matrix and reducing tensile strength. The formation of mullite also leads to a mismatch in thermal expansion between the surrounding aggregate and the matrix, reducing the flexural strength of the castable. However, it improves crack propagation resistance, which is beneficial for enhancing the thermal shock resistance of high-alumina castables.

            In summary, in applications where temperature and castable strength requirements are not high, high-alumina castables are typically prepared using lightweight bauxite aggregate. Microporousization of high-strength bauxite aggregate can improve the refractoriness and service strength of the castable, indicating that reducing the pore size of the aggregate and ensuring its uniform distribution is beneficial for improving the strength and thermal insulation performance of the castable. Hollow spherical aggregate can also be used to optimize traditional high-alumina castables, creating uniformly distributed closed pores within the material to improve various performance characteristics.

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