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As an over-the-counter manufacturer, titanium dioxide is also used in the production of pharmaceuticals
  • What are the machinery requirements for setting up a lithopone manufacturing plant?
  • In food, titanium dioxide has a few different uses. Most notably, its food-grade form is used as a colorant to enhance and brighten the color of white foods such as dairy products, candy, frosting, and the powder on donuts. For foods that are sensitive to UV light, titanium dioxide is used for food safety purposes to prevent spoilage and increase the shelf life of food.

    Here, NaOH or NH3 · H2O is used as a precipitant or pH regulator to react with FeSO4 to form ferrous hydroxide precipitation; Air is used as oxidant; The iron sheet reacts with sulfuric acid produced during the oxidative hydrolysis of FeSO4 to provide ferrous ions required in the reaction system and maintain the pH value of the solution. The alkali consumption of acid method is less and the particles are easy to wash. The relative rates of seed preparation and crystal growth determine the particle size, particle size distribution and particle morphology of iron yellow particles.

    Another important factor to consider when choosing a TiO2 supplier is their commitment to sustainability and environmental responsibility
    excellent
    excellent white tio2 supplier. The production of TiO2 can have significant environmental impacts, so it is crucial to work with a supplier that prioritizes sustainable practices and minimizes their environmental footprint. An excellent white TiO2 supplier will have certifications and initiatives in place to demonstrate their commitment to sustainability and responsible sourcing. Furthermore, we place great emphasis on environmental protection and sustainability in our operations

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    In recent years, the demand for titanium dioxide has been on the rise due to its increasing use in the construction and automotive sectors. As a result, the expansion of TiO2 factories is a strategic move for many companies, reflecting the sector's robust growth prospects.
    One common method to determine sulfate as TiO2 involves gravimetric analysis. In this technique, a sample containing sulfate is treated with barium chloride, resulting in the precipitation of barium sulfate. The precipitate is then filtered, dried, and weighed. The weight of the barium sulfate precipitate correlates directly with the amount of sulfate originally present in the sample. To express this as TiO2, a conversion factor based on stoichiometry is applied. This method, while straightforward, can be time-consuming and subject to errors in filtration and drying.

    In addition to controlling the reaction conditions, it is also important to carefully monitor the precipitation process to ensure that the desired precipitation percentage is achieved. This can be done through various analytical techniques, such as X-ray diffraction, scanning electron microscopy, and energy-dispersive X-ray spectroscopy, which can provide valuable insights into the particle size distribution, crystallinity, and purity of the titanium dioxide product.


    Hebei Caixin Material Technology Co., LTD., formerly established in 2005, is located in the core of Beijing-Tianjin-Hebei City cluster, close to Tianjin Port, the largest port in the north, with developed transportation and outstanding people. After the continuous efforts of Caiqing people, has accumulated assets for the company of nearly 200 million, nearly 1,000 employees, Caiqing technology has become the pigment titanium dioxide research and development, production, sales and import and export trade in one of the large company, we integrate industry resources, to provide personalized customized services for global customers. We adhere to the market-oriented, good faith as the principle, is committed to open up a diversified international market, for the world customers to provide quality products, efficient service, is our unremitting pursuit. We sincerely invite customers from all over the world to visit our company.

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    TiO2 NPs appeared to be more toxic to nematode Caenorhabditis elegans than submicron-sized TiO2.  At a concentration of 1 mg/l, 7 nm particles affected its fertility and survival rate and were more toxic than 20 nm anatase particles. Similarly, Hu et al. showed that rutile particles (10–20 nm), at concentrations above 1 g/kg soil, can be bio-accumulated in earthworms, where they induce oxidative stress, inhibit the activity of cellulase and induce DNA and mitochondrial damage.

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    Chinese manufacturers adhere to strict quality control standards, ensuring that their anatase TiO2 meets international specifications. The 99.6% purity level is achieved through sophisticated purification techniques, including leaching, precipitation, and calcination processes. These methods remove impurities such as iron, sulfur, and organic compounds, resulting in a product with exceptional whiteness, brightness, and dispersion properties.
    Manufacturers of rutile titanium dioxide employ different processes to produce this versatile pigment. The two primary methods are the sulfate process and the chloride process. In the sulfate process, ilmenite ore is treated with sulfuric acid to form titanyl sulfate solution, which is subsequently processed into titanium dioxide. This method typically results in a more opaque and durable pigment that is preferred in applications where weatherability is crucial. On the other hand, the chloride process involves treating rutile ore with chlorine gas to produce titanium tetrachloride, which is then refined and oxidized to form titanium dioxide. This method often yields a higher purity product suitable for applications requiring greater brightness and color stability.

    Barium sulfide is produced by carbothermic reduction of barium sulfate. Zinc sulfate is obtained from a variety of zinc products, often waste, by treatment with sulfuric acid.

    20% TiO2
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  • The pH of titanium dioxide refers to its acidity or alkalinity level, which can greatly affect its dispersibility, stability, and performance. Typically, titanium dioxide is most stable and exhibits its optimal properties at neutral pH levels, around 7.0. At this pH, the titanium dioxide particles are well-dispersed and have maximum brightness and opacity.