Chemical Industry - The high corrosion resistance of nickel-based alloys in chemical environments makes them an ideal choice for reducing shutdowns and maintenance in chemical plants. Nickel-based alloys are mainly composed of nickel and elements such as chromium, molybdenum, and copper, which together give nickel-based alloys excellent corrosion resistance in harsh environments. In the chemical industry, the production process often involves various corrosive media such as strong acids, strong alkalis, and organic solvents, and ordinary materials are difficult to resist these corrosions for a long time. The emergence of nickel-based alloys has greatly improved the corrosion resistance of chemical equipment, thereby extending the service life of the equipment, reducing maintenance costs, and ensuring the continuity and safety of production.
High temperature stability: Nickel-based alloys can maintain structural stability at high temperatures and will not easily deform, ensuring strict temperature control and reaction efficiency in the chemical process. Nickel-based alloys are often used in the manufacture of chemical reactors and heat exchangers, especially under high temperature conditions, and their performance is particularly outstanding.
Application areas:
Reactor materials: Nickel-based alloy tubes can withstand acid and alkali corrosion and high temperature and high pressure environments, and are suitable for reactor materials in the chemical industry, such as ammonia synthesis equipment, alkane conversion equipment and sulfuric acid equipment.
Pipes and valves: Nickel-based alloys are also widely used in the manufacture of pipes, valves and other accessories to ensure the safety and stability of chemical fluids during transportation.
Membrane separation technology and waste gas treatment: As the chemical industry develops towards a more efficient and environmentally friendly direction, the application of nickel-based alloys in membrane separation technology, waste gas treatment and other fields is also gradually increasing.