Tag: spherical alumina

Characteristics and applications of spherical alumina

Spherical alumina: characteristics
1. High filling: Due to its large particle diameter, and wide particle distribution, this product produces compounds of low viscosity.
2. High thermal conduction: The high filling density of the compound allows for a greater thermal conductivity as well as a faster heat dissipation compared to crystalline silicon.
3. Spherical shape reduces wear of machines such as kneading machines.
Application of spherical aluminum
1. Use as a ceramic material
Micropowder with a spherical shape has excellent properties for compression molding and silting, making it ideal for producing high-quality ceramic products.
2. It is used as a material for grinding and polishing
Using spherical aluminum oxide as a polishing material can help to avoid scratches.
3. It is used in the petrochemical industries
The petrochemical industries are putting more and more demands on the alumina carrier’s pore size distribution, and its pore structure. To control the particle size distribution, it is possible to adjust the spherical shape of the alumina powder by changing the particle size configuration.
4. Catalyst
The use of spherical aluminum as a catalyst directly can reduce abrasion while increasing the lifespan of the catalyst. This will lower the production costs.
5. For surface protective coating
Surface protection for machinery, tools, chemical pipelines, and equipment is achieved by spraying spherical powder particles. These can significantly improve surface hardness, corrosion and wear resistance.
6. Luminescent materials
Alumina powder spherical has a high density which reduces the scattering and loss of light.
7. Electronics industry
The excellent properties of spherical aluminum in terms of electrical, thermal, and mechanical properties make it a popular choice for electronic semiconductor packaging.

The excellent properties of spherical aluminum in terms of electrical, thermal, and mechanical properties make it a popular choice for electronic semiconductor packaging.

Tech Co., Ltd. () is an experienced spherical-alumina manufacturer with over 12 year experience in chemical product development and research. If you need high quality spherical aluminum please contact us or send an enquiry.

Spherical alumina: characteristics 1. High filling: Due to its large particle diameter, and wide particle distribution, this product produces compounds of low viscosity. 2. High […]

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The Seven Methods for Preparing Spherical Alumina

Spherical Alumina Spherical alumina is produced by high temperature melting, high spherical rates, high alpha-phase aluminum oxide content. This product has superior performance in rubber, plastic, and ceramic feedstock. Here is a summary of how to prepare spherical-grade alumina. Each method has its own characteristics.
Here are seven ways to prepare spherical aluminum:
1. Various sedimentation method
The precipitation process in homogeneous solutions is a crystal nuclear reaction. After that, the aggregation becomes greater and eventually from the solution it is usually unbalanced. But, if you lower the concentration of precipitant in homogeneous, even slowly, then large numbers of microcrystals nuclei will be evenly produced. Finally, the finely precipitated particles can be uniformly distributed in the entire solution. This ensures that the equilibrium state is maintained for a long time. Method for average prediction. Al2 (SO4)3, Al (NO3) 3 & urea are used as raw materials. Under the conditions of an oil bath 98°C, the hydroxide produced by slow hydrolysis of Urea is precipitated. The size of the precursor particle can be adjusted by adjusting the proportion of SO422- with NO3–. This allows for the preservation of the spherical structure after calcination. Al2 (SO4) 3. The obtained colloid particles have a very good shape. This method was used in Al2(SO4) 3 and Urea as raw materials. The spherical (and hollow spherical) alumina powders were prepared under different conditions. A homogeneous precipitation process is possible if the precipitated particles obtained fall within the range for colloid particles. In addition to the conditions of SO42 – present, it is often difficult to finally form a glue of the globiosis in the gelation of sol particles to finally form a globiotype, so people think that this formation of sol-emulsion-condensation Gladle.
2. Sol-emulsion-gel method
This method is based on the sol-gel method. To obtain spherical powder particles from the oil phase, one uses the interface tension of both the oil and the water phases to form small droplets. The aluminum hydrolysis process produced the spheroidized alu powder. In this case, 50% of the aluminum was removed, 40% was the acetonitrile, and 9% and 1 percent respectively were the octanols and butanols of dispersed waters. Using hydroxypropylcellulose as a dispersant to obtain a spherical g-alumina powder having a very good spherical degree.
3. Drip method
Droplet methods are used to bind the alu sol into the oil layer. This is usually done using paraffin, mineral oils, etc. The resulting spherical sol particle is then gelled in an alkaline ammonia solution. This method further enhances the sol-emulsion gel method.
4. Use templates
The template method controls the morphology during the production of spherical foodstock. The product is often hollow or has a nuclear-shell structure. The aluminum powder surface is used for simplifying the aluminum powder’s surface. While the template method can be used to prepare an air spherical ball sphere, it has limitations. The preparation steps are more involved and require more effort.
5. Gas solve decomposition method
Aerosol decomposition uses aluminum salts as a raw material. It makes use of the properties of aluminum alcohol and high-temperaturepyrolysis. Next, it uses phase transition to gasify aluminum oxide, then contact with hydrogen vapor. Finally, it picks up high temperatures dry or direct high temperatures, thereby achieving transitions of gas-liquid solid or gas-solid phases and finally, creating a spherical powder of alumina. Complex experiments involving reaction moieties as well as atomizing moiety are key to this method.
6. Radio frequency induction plasma method
Radio frequency plasma treatment of alumina dust using radio frequency radiation. This plasma has high energy density and high heating power. It also allows for simple processing of material. The powder is free from any electrodes and therefore not contaminated by electrode evaporation. It is possible for purity to be maintained. Additionally, irregular shaped alumina particles can be sprayed into plasma torch with the feed gas. Plasma melts rapidly and is quickly heated. Droplets will quickly solidify, creating spherical particle.
7. Jet
The essence and structure of spinal alumina are formed quickly by surface tension. You can divide it into spray heat, spray drying, and spray melting Law, depending on the characteristics of phase transformation. AlCl3, Al2 SO4) 3, Al (NO3) 3 solution form small droplets through atomization. The process also requires a high thermal decomposition temperature of around 900°C. The aluminum salt solution is first mixed with ammonia to form an alkali sol. After that, spray the alumina sol at between 150 and 240 C.
Tech Co., Ltd. () is a professional Spherical Alumina Over 12 years experience in the development and research of chemical products. We accept credit cards, T/T and Paypal payments. We will ship goods overseas via FedEx, DHL and by air or sea to our customers.

Spherical Alumina Spherical alumina is produced by high temperature melting, high spherical rates, high alpha-phase aluminum oxide content. This product has superior performance in rubber, […]

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