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In conclusion, the manufacturing process of lithopone is a complex yet meticulously controlled procedure that combines chemistry, engineering, and precision. From the synthesis of its components to the final grinding, every step contributes to the pigment's performance characteristics. As a widely used material in various industries, the importance of lithopone and its manufacturers cannot be overstated, continually driving advancements in production techniques to cater to evolving market demands.

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Despite the global economic fluctuations, China's titanium dioxide industry, especially the R996 segment, has shown remarkable resilience. The continuous innovation and technological upgrades have allowed the sector to maintain its leading position in the international market. As the demand for high-quality pigments continues to rise, China's R996 titanium dioxide is poised to play an increasingly significant role in meeting these demands.

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The biological activity, biocompatibility, and corrosion resistance of implants depend primarily on titanium dioxide (TiO2) film on biomedical titanium alloy (Ti6Al4V). This research is aimed at getting an ideal temperature range for forming a dense titanium dioxide (TiO2) film during titanium alloy cutting. This article is based on Gibbs free energy, entropy changes, and oxygen partial pressure equations to perform thermodynamic calculations on the oxidation reaction of titanium alloys, studies the oxidation reaction history of titanium alloys, and analyzes the formation conditions of titanium dioxide. The heat oxidation experiment was carried out. The chemical composition was analyzed with an energy dispersive spectrometer (EDS). The results revealed that titanium dioxide (TiO2) is the main reaction product on the surface below 900°C. Excellent porous oxidation films can be obtained between 670°C and 750°C, which is helpful to improve the bioactivity and osseointegration of implants.

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