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Invar 36 Pipes

Invar 36 Pipes

Invar 36 Pipe is an alloy with 36% nickel and the rest iron, and it has the lowest CTE in the world. This characteristic makes it suitable for applications with dimensional stability for different temperatures. The Invar 36 Pipes are used in aerospace applications, cryogenics, precision instruments and scientific applications where thermal expansion should be limited to ensure consistent performance.

Chemical Composition of Invar 36 Pipes

Understanding the properties and performance of Invar 36 Pipes requires an understanding of the composition of the Invar 36 Pipes.

GradeCMnSFeNiPSiCr
Invar 360.05 max.40 max.20 maxBal36.0 min.0060.400.25

Therefore, this table offers some chemical composition of these Pipes and their properties, as well as their suitability.

Mechanical Properties of Invar 36 Pipes

The table gives engineers and manufacturers the information needed to assess the integrity and durability of Invar 36 Pipes in demanding environments.

GradeDensityMelting PointTensile StrengthYield Strength (0.2%Offset)Elongation
Invar 360.293 lbs/in3 8.11 g/cm32606°F 1430°CPsi – 71,000 , MPa – 490Psi – 35,000 , MPa – 24042 %

Therefore, this important data on the strength, flexibility and resilience of Invar 36 Pipes is essential to reliability and longevity.

Advantages of Invar 36 Pipes

Invar 36 Sheets have several features that make them useful for various industrial uses. Some of its key features include:

  • Extremely Low Thermal Expansion: Invar 36 Pipe has a very low coefficient of thermal expansion, which is useful in applications where small fluctuations in dimension due to temperature are not desirable.
  • High Dimensional Stability: They are reliable and accurate because they can uphold their dimensions regardless of temperature changes.
  • Exceptional Cryogenic Performance: Invar 36 Pipe is very flexible even at cryogenic temperatures, and it is used in the following applications: liquefied gas storage, cryogenic transportation and superconducting systems.
  • Strength and Durability: The material shows high mechanical characteristics and low deformation, so the equipment is highly durable and can work for a long time in difficult conditions.
  • Corrosion Resistance: Invar 36 Pipe is moderately corrosion resistant, and its corrosion resistance is further improved in controlled environments, thus increasing the material's durability.
  • Ease of Machining and Fabrication: The alloy is weldable, machinable and formable, and it is suitable for manufacturing specific parts for numerous industrial applications.
  • Thermal Cycling Resistance: Invar 36 Pipe does not degrade its structure when exposed to thermal cycling and is, therefore, suitable for use in areas where temperature fluctuations are common.

These features make Invar 36 a perfect material for applications requiring dimension stability and a low coefficient of linear thermal expansion.

Applications of Invar 36 Sheets

Invar 36 Bar is used in various high-precision applications where low thermal expansion is critical. Some of the key applications include:

  • Cryogenic Systems: The Invar 36 Pipes are suitable for cryogenic uses such as liquefied gas storage tanks, cryogenic pipelines, and transport for gases like liquid nitrogen, helium and oxygen because of their enhanced low-temperature performance.
  • Aerospace Industry: These pipes are used in aerospace applications such as satellite and rocket structures, control rocket propulsion and thermal management structures and components, for which dimensional stability is essential when the temperature fluctuates.
  • Precision Instruments: Since they are highly resistant to thermal expansion and contraction, the Invar 36 Pipes are used in the production of highly accurate scientific measuring instruments, including calibration and laboratory equipment.
  • Optical and Laser Equipment: The pipes are used in optical systems and laser equipment where close tolerance is required to maintain the correct alignment of components and the system's overall functioning.
  • Scientific Research: Invar 36 Pipes are used in essential applications as a component of experimental services that need thermal stability, such as particle accelerators, vacuum chambers, and high-tech research laboratories.
  • Electronics and Semiconductor Manufacturing: They manufacture parts for the semiconductor and electronics industries that require accurate alignment and stability regarding thermal processing.
  • Magnetic Applications: Invar 36 Pipes exhibit stable magnetic characteristics, and they are used in magnetic protection, electrical products, and other areas where a constant magnetic characteristic is required.
  • Energy Industry: Invar 36 Pipes is used in energy-related fields such as solar power, thermoelectric systems and energy-saving technologies where heat and stress resistance is paramount.
  • Nuclear Industry: These pipes are used in nuclear reactors and related systems because they can withstand thermal cycling and have good dimensional stability in high-radiation and high-temperature applications.

Its unique properties make it suitable for industries that demand high precision and durability under varying temperature conditions.

Invar 36 Pipe is an alloy with 36% nickel and the rest iron, and it has the lowest CTE in the world. This characteristic makes it suitable for applications with dimensional stability for different temperatures. The Invar 36 Pipes are used in aerospace applications, cryogenics, precision instruments and scientific applications where thermal expansion should be limited to ensure consistent performance.

Chemical Composition of Invar 36 Pipes

Understanding the properties and performance of Invar 36 Pipes requires an understanding of the composition of the Invar 36 Pipes.

GradeCMnSFeNiPSiCr
Invar 360.05 max.40 max.20 maxBal36.0 min.0060.400.25

Therefore, this table offers some chemical composition of these Pipes and their properties, as well as their suitability.

Mechanical Properties of Invar 36 Pipes

The table gives engineers and manufacturers the information needed to assess the integrity and durability of Invar 36 Pipes in demanding environments.

GradeDensityMelting PointTensile StrengthYield Strength (0.2%Offset)Elongation
Invar 360.293 lbs/in3 8.11 g/cm32606°F 1430°CPsi – 71,000 , MPa – 490Psi – 35,000 , MPa – 24042 %

Therefore, this important data on the strength, flexibility and resilience of Invar 36 Pipes is essential to reliability and longevity.

Advantages of Invar 36 Pipes

Invar 36 Sheets have several features that make them useful for various industrial uses. Some of its key features include:

  • Extremely Low Thermal Expansion: Invar 36 Pipe has a very low coefficient of thermal expansion, which is useful in applications where small fluctuations in dimension due to temperature are not desirable.
  • High Dimensional Stability: They are reliable and accurate because they can uphold their dimensions regardless of temperature changes.
  • Exceptional Cryogenic Performance: Invar 36 Pipe is very flexible even at cryogenic temperatures, and it is used in the following applications: liquefied gas storage, cryogenic transportation and superconducting systems.
  • Strength and Durability: The material shows high mechanical characteristics and low deformation, so the equipment is highly durable and can work for a long time in difficult conditions.
  • Corrosion Resistance: Invar 36 Pipe is moderately corrosion resistant, and its corrosion resistance is further improved in controlled environments, thus increasing the material's durability.
  • Ease of Machining and Fabrication: The alloy is weldable, machinable and formable, and it is suitable for manufacturing specific parts for numerous industrial applications.
  • Thermal Cycling Resistance: Invar 36 Pipe does not degrade its structure when exposed to thermal cycling and is, therefore, suitable for use in areas where temperature fluctuations are common.

These features make Invar 36 a perfect material for applications requiring dimension stability and a low coefficient of linear thermal expansion.

Applications of Invar 36 Sheets

Invar 36 Bar is used in various high-precision applications where low thermal expansion is critical. Some of the key applications include:

  • Cryogenic Systems: The Invar 36 Pipes are suitable for cryogenic uses such as liquefied gas storage tanks, cryogenic pipelines, and transport for gases like liquid nitrogen, helium and oxygen because of their enhanced low-temperature performance.
  • Aerospace Industry: These pipes are used in aerospace applications such as satellite and rocket structures, control rocket propulsion and thermal management structures and components, for which dimensional stability is essential when the temperature fluctuates.
  • Precision Instruments: Since they are highly resistant to thermal expansion and contraction, the Invar 36 Pipes are used in the production of highly accurate scientific measuring instruments, including calibration and laboratory equipment.
  • Optical and Laser Equipment: The pipes are used in optical systems and laser equipment where close tolerance is required to maintain the correct alignment of components and the system's overall functioning.
  • Scientific Research: Invar 36 Pipes are used in essential applications as a component of experimental services that need thermal stability, such as particle accelerators, vacuum chambers, and high-tech research laboratories.
  • Electronics and Semiconductor Manufacturing: They manufacture parts for the semiconductor and electronics industries that require accurate alignment and stability regarding thermal processing.
  • Magnetic Applications: Invar 36 Pipes exhibit stable magnetic characteristics, and they are used in magnetic protection, electrical products, and other areas where a constant magnetic characteristic is required.
  • Energy Industry: Invar 36 Pipes is used in energy-related fields such as solar power, thermoelectric systems and energy-saving technologies where heat and stress resistance is paramount.
  • Nuclear Industry: These pipes are used in nuclear reactors and related systems because they can withstand thermal cycling and have good dimensional stability in high-radiation and high-temperature applications.

Its unique properties make it suitable for industries that demand high precision and durability under varying temperature conditions.

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