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Liquid Hydrogen Vacuum Insulated Pipe
Liquid Hydrogen Vacuum Insulated Pipe
Liquid Hydrogen Vacuum Insulated Pipe
Liquid Hydrogen Vacuum Insulated Pipe
Liquid Hydrogen Vacuum Insulated Pipe
Liquid Hydrogen Vacuum Insulated Pipe

Liquid Hydrogen Vacuum Insulated Pipe

High‑Vacuum Cryogenic Pipe for Liquid Hydrogen Transfer

The Liquid Hydrogen Vacuum Insulated Pipe is a high‑efficiency cryogenic transfer pipeline designed for the safe and reliable transport of liquid hydrogen at ultra‑low temperatures. Constructed with double‑wall stainless steel, high‑vacuum insulation, and multilayer thermal shielding, it minimizes heat ingress and significantly reduces hydrogen boil‑off. The rigid piping system ensures durability, long service life, and stable thermal performance under continuous operation. It is widely used in hydrogen energy projects, aerospace systems, fuel cell technology, and industrial cryogenic applications requiring low‑loss hydrogen distribution.

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Product Overview

The liquid hydrogen vacuum insulated pipe is a high-performance vacuum-insulated pipeline designed for the transfer of ultra-low temperature liquid hydrogen. It is widely used in industries such as hydrogen energy, air separation, energy equipment, aerospace, electronics and superconducting devices, scientific research, advanced materials, and chemical processing.

Specifically engineered for the extremely low temperature of liquid hydrogen (around 20 K) and the characteristics of hydrogen media, this pipeline enables stable and efficient cryogenic transfer in liquid hydrogen storage, transfer, and distribution systems. It provides a safe and efficient alternative to traditional insulated pipelines in liquid hydrogen applications.

Working Principle

The liquid hydrogen vacuum insulated pipe utilizes high-vacuum multilayer and multi-shield insulation technology. Multiple layers of high-efficiency insulation composite materials are installed between the inner and outer stainless steel pipes, while maintaining a stable high-vacuum environment.

By combining multilayer radiation shields with vacuum insulation, the structure effectively suppresses heat transfer caused by conduction, convection, and radiation. This significantly reduces heat leakage into the pipeline system.

Compared with conventional insulated pipelines, this design offers much lower heat leakage, effectively reducing hydrogen boil-off and improving the overall efficiency and safety of cryogenic transfer systems.

Key Features

  • Extremely Low Heat Loss:Meets the strict thermal insulation requirements for ultra-low temperature liquid hydrogen transfer.
  • High Energy Efficiency:Significantly reduces hydrogen boil-off and lowers system operating energy consumption.
  • Reliable Structure:Manufactured with high-quality stainless steel to withstand extreme cryogenic temperatures and pressure conditions.
  • Stable Operation:Suitable for continuous operation in industrial liquid hydrogen systems and research cryogenic facilities.

Applications

  • Liquid Hydrogen Storage and Distribution Systems:Used for safe transfer and distribution of liquid hydrogen between storage tanks, pipelines, and end-use equipment.
  • Hydrogen Infrastructure and Demonstration Projects:Provides stable cryogenic pipeline solutions for hydrogen transportation and applications in the hydrogen energy industry.
  • Aerospace and Cryogenic Propulsion Systems:Applied in liquid hydrogen fuel transfer pipelines and related propulsion equipment.
  • Electronics, Superconducting, and Cryogenic Research Systems:Supplies stable liquid hydrogen transfer environments for superconducting devices and cryogenic experimental facilities.
  • Advanced Materials and Manufacturing:Supports liquid hydrogen transfer in material research and manufacturing processes requiring ultra-low temperatures.
  • Chemical and Energy Equipment Systems:Used in cryogenic pipeline systems for liquid hydrogen and other ultra-low temperature media in energy and chemical equipment.
  • Scientific Research and Cryogenic Experiment Platforms:Meets the stable liquid hydrogen transfer needs of research institutes and laboratories.

Technical Specifications:

ItemVacuum Socket ClampVacuum Socket FlangeWelding
Connection TypeClampFlangeWelding
Joint InsulationVacuumVacuumPerlite or Vacuum
Supply Range (Inner Pipe)DN8 ~ DN25DN8 ~ DN80DN10 ~ DN500
Design Pressure≤0.8 MPa≤1.6 MPa≤6.4 MPa
Installation MethodSimpleSimpleWelding
Material300 Series Stainless Steel
Max Standard Length≤8.2 m
Design Temperature-270 ℃ ~ 90 ℃
Applicable MediumLiquid Hydrogen

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