Products Parameters
| Element | Grade 1 | Grade 2 | Grade 3 | Grade 4 | Grade 5 (Ti-6Al-4V) | Grade 23 (Ti-6Al-4V ELI) |
|---|---|---|---|---|---|---|
| Titanium (Ti) | > 99.5% | > 99.0% | > 98.0% | > 97.0% | > 99.0% | > 99.0% |
| Aluminum (Al) | - | - | - | - | 5.5-6.75% | 5.5-6.5% |
| Vanadium (V) | - | - | - | - | 3.5-4.5% | 3.5-4.5% |
| Iron (Fe) | < 0.2% | < 0.3% | < 0.3% | < 0.5% | < 0.25% | < 0.25% |
| Oxygen (O) | < 0.18% | < 0.25% | < 0.35% | < 0.40% | < 0.20% | < 0.13% |
| Carbon (C) | < 0.08% | < 0.10% | < 0.10% | < 0.15% | < 0.10% | < 0.08% |
| Nitrogen (N) | < 0.03% | < 0.03% | < 0.05% | < 0.05% | < 0.05% | < 0.05% |
| Hydrogen (H) | < 0.015% | < 0.015% | < 0.015% | < 0.015% | < 0.015% | < 0.0125% |

Products Description
Titanium, a silver-grey metal element, is not common in nature, but it has attracted much attention for its excellent performance. Titanium powder, as one of the important forms of titanium materials, stands out among many materials for its low density, high strength, corrosion resistance, high temperature resistance and other characteristics. Its density is only about half of that of iron, but it has the same strength as steel. This light and tough characteristic makes titanium powder an ideal material for aerospace, medical equipment, chemical equipment and other fields.

The preparation of titanium powder is a complex process that combines science and art. At present, the mainstream preparation methods include hydrogenation and dehydrogenation, electrolysis, gas atomization, etc. Each method has its unique advantages and applicable scenarios. For example, the hydrogenation and dehydrogenation method generates titanium hydride by the reaction of titanium and hydrogen, and then obtains titanium powder through dehydrogenation. This method can prepare titanium powder with uniform particle size and high purity; while the gas atomization method uses high-speed airflow to atomize molten titanium liquid into tiny particles, which is suitable for large-scale industrial production. The continuous optimization and innovation of these preparation processes have not only improved the quality and output of titanium powder, but also laid a solid foundation for the application of titanium powder in a wider range of fields.

The wide application of titanium powder is the best proof of its unique charm. In the field of aerospace, titanium powder is widely used in the manufacture of aircraft engine blades and fuselage structural parts due to its light weight, high strength and corrosion resistance, effectively reducing the weight of the aircraft and improving fuel efficiency. In terms of medical devices, titanium powder has become the preferred material for making high-end medical equipment such as artificial joints and dental implants due to its good biocompatibility and machinability. In addition, in the fields of chemical industry, automobile, electronics, environmental protection, etc., titanium powder also plays an irreplaceable role. From catalyst carriers to coating additives, from lightweight automotive parts to high-performance battery materials, titanium powder is everywhere.

With the advancement of science and technology and the increasingly urgent need for global sustainable development, the application prospects of titanium powder will be broader. In the field of new energy, titanium powder has great potential as anode material for lithium-ion batteries, and is expected to promote the performance of electric vehicles and energy storage systems; in 3D printing technology, titanium powder, as a high-performance printing material, is opening a new era of personalized customization and complex structure manufacturing.
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