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Industrial pure titanium, and excellent stamping performance. It can perform various forms of welding, has good welding performance, and the welded joint can reach the strength of the base metal. Easy to cut with saws and grinders, and has good machining properties. It has excellent corrosion resistance and is used for parts below ℃ with small force and parts stamped into various complex shapes. Such as piping systems, valves, pumps, chemical heat exchangers, pump bodies, distillation tower seawater desalination systems, platinum-coated anodes, aircraft frames, skins, engine parts, beams, etc.
The alloy has good welding performance and high creep strength, but the process plasticity is low and can be deformed in a hot state. The alloy is not sensitive to cuts when subjected to axial load, and the cutting performance is good for parts working below ℃ and Welding parts
Titanium alloy has poor stamping performance but good thermoplasticity. It can perform various forms of welding and has good performance. The strength and plasticity of the welded joint can be equal to the base metal. The machining performance is the same as that of industrial pure titanium. It has good corrosion resistance and good high-temperature thermal stability. It can be used as structural parts for long-term operation below ℃ and can be used as various die forgings
Titanium alloy has good thermoplasticity. It can be welded in various forms and has good weldability. The machinability is the same as industrial pure titanium. Good oxidation resistance, long-term working parts below ℃. Can manufacture engine compressor discs and blades.
Titanium alloy has good stamping properties. It can be welded in various forms and has good weldability. The machinability is the same as industrial pure titanium. Parts with good oxidation resistance can be used for work below ℃. Suitable for various plates, stampings and welded parts
Titanium alloy has a lasting strength of above 10°C and good plasticity during hot processing. When heated to ℃, there is no tendency to become brittle. Therefore, it can be used to weld parts that work at high temperatures to make parts that work below ℃, welded parts, die forgings and bending parts. Titanium alloys have poor stamping properties and good thermoplasticity. Various forms of welding can be performed, and the strength of the welded joint can reach the strength of the base metal. The machining performance is still good, requiring the use of carbide tools, large cutting speed, slow speed, and sufficient cooling. Good corrosion resistance and good thermal stability. It is one of the most widely used titanium alloys and is used for parts that work for a long time below ℃
Titanium alloys are stable below ℃, but their plasticity decreases at higher temperatures. Parts that can be deformed by forging, stamping, etc. in a hot state and work below ℃
Titanium alloy has good thermoplasticity. Machinability is the same as the alloy. High corrosion resistance. Thermal stability is still good and parts that work for a long time below ℃. Can manufacture compressor discs and blades
Titanium alloy has poor stamping properties but good thermoplasticity. Various forms of welding can be performed, and the strength of the welded joint can reach the strength of the base metal. The machining properties are the same as those of the alloy. Good corrosion resistance. It has good thermal stability, significant heat treatment effect, and good hardenability. It is suitable for parts that work for a long time below ℃. Titanium alloy is an alloy composed of titanium as the base and adding other elements. There are two types of isomorphic crystals of titanium: titanium with a close-packed hexagonal structure below ℃, and body-centered cubic titanium above ℃.
Alloying elements can be divided into three categories according to their effects on phase transformation temperature
① Elements that stabilize the phase and increase the phase transformation temperature are stable elements, such as aluminum, carbon, oxygen and nitrogen. Among them, aluminum is the main alloying element of titanium alloy. It has obvious effects on improving the normal and high temperature strength of the alloy, reducing the specific gravity and increasing the elastic modulus.
② Elements that stabilize the phase and lower the phase transition temperature are stable elements, and can be divided into two types: isomorphous and eutectoid. The former includes molybdenum, niobium, vanadium, etc. The latter includes chromium, manganese, copper, iron, silicon, etc.
③ Elements that have little effect on the phase transition temperature are neutral elements, including zirconium, tin, etc. Oxygen, nitrogen, carbon and hydrogen are the main impurities in titanium alloys. Oxygen and nitrogen have a large solubility in the phase and have a significant strengthening effect on titanium alloys, but they reduce the plasticity. It is usually specified that the oxygen and nitrogen contents in titanium are at and below respectively. The solubility of hydrogen in the phase is very small. Excessive hydrogen dissolved in titanium alloys will produce hydrides, making the alloy brittle. Usually the hydrogen content in titanium alloys is controlled below. The dissolution of hydrogen in titanium is reversible and can be removed by vacuum annealing.
Classification of titanium alloys
Titanium is an allotrope, with a melting point of ℃. When it is below ℃, it has a close-packed hexagonal lattice structure, which is called titanium. Above ℃, it has a body-centered cubic lattice structure. called titanium. By utilizing the different characteristics of the above two structures of titanium, adding appropriate alloying elements to gradually change the phase transformation temperature and phase content, titanium alloys with different structures are obtained ( ). At room temperature, titanium alloys have three matrix structures, and titanium alloys are divided into the following three types of alloys, (+) alloys and alloys. China is represented by , , and respectively.
Titanium alloy
It is a single-phase alloy composed of phase solid solution. Whether at normal temperature or at higher practical application temperature, it is a phase with stable structure and higher wear resistance than pure titanium. , strong antioxidant capacity. At temperatures between ℃ and ℃, it still maintains its strength and creep resistance, but it cannot be strengthened by heat treatment, and its room temperature strength is not high.
Titanium alloy
It is a single-phase alloy composed of phase solid solution. It has high strength without heat treatment. After quenching and aging, the alloy is further strengthened. The strength at room temperature can reach ~, but the thermal stability is poor. Not suitable for use at high temperatures.
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