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Liquid Hydrogen Vacuum Insulated Hose
Liquid Hydrogen Vacuum Insulated Hose
Liquid Hydrogen Vacuum Insulated Hose
Liquid Hydrogen Vacuum Insulated Hose

Liquid Hydrogen Vacuum Insulated Hose

Flexible High‑Vacuum Hose for Liquid Hydrogen Transfer

The Liquid Hydrogen Vacuum Insulated Hose is a high‑performance cryogenic transfer hose engineered for the safe and efficient handling 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 reduces hydrogen boil‑off during transfer. The hose combines flexibility with leak‑tight integrity, making it suitable for confined installations and dynamic operations. It is widely used in hydrogen energy systems, aerospace applications, fuel cell technology, and industrial cryogenic projects requiring reliable, low‑loss hydrogen transfer.

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Product Overview

The liquid hydrogen vacuum insulated hose is a high-performance flexible pipeline designed for the transfer of liquid hydrogen and other ultra-low temperature media. It is widely used in cryogenic systems across hydrogen energy, aerospace, energy equipment, scientific research, cryogenic engineering, and advanced materials industries.

Specifically engineered for the liquid hydrogen temperature range (around 20 K) and the unique characteristics of hydrogen, the hose adopts a high-vacuum multilayer insulation structure. This design achieves extremely low heat leakage, significantly outperforming conventional insulated hoses and pipelines. As a result, it effectively reduces hydrogen boil-off while improving system efficiency and operational safety.

Working Principle

The hose features a double-layer stainless steel structure. Between the inner and outer tubes, multiple layers of high-efficiency insulation materials are installed and maintained under a stable high-vacuum environment.

By combining multilayer radiation shielding with vacuum insulation, the design effectively minimizes heat transfer caused by radiation, conduction, and convection. This structure ensures extremely low heat leakage during operation.

The vacuum-jacketed structure also prevents condensation and frost formation on the outer surface when transporting liquid hydrogen, reducing cold energy loss and external heat ingress while ensuring safe and stable long-term transfer of liquid hydrogen.

Key Features

  • Double-layer stainless steel construction with multilayer insulation and high-vacuum design for excellent cryogenic performance
  • High flexibility with a small bending radius; hose length can be customized for different operating conditions
  • Compatible with vacuum insulated piping systems for reliable integrated connections
  • Both ends can be equipped with specialized quick connectors or cryogenic flanges to reduce hydrogen boil-off during filling, transfer, and discharge
  • Structural design optimized for cryogenic strength and hydrogen compatibility to ensure safe operation

Applications

  • Liquid Hydrogen Storage and Refueling Systems:Used for safe and efficient transfer of liquid hydrogen from storage tanks to fueling equipment.
  • Hydrogen Energy Infrastructure and Demonstration Projects:Provides reliable liquid hydrogen transfer solutions for research, pilot, and industrial hydrogen applications.
  • Aerospace and Cryogenic Propulsion Systems:Suitable for liquid hydrogen fuel transfer and pipeline systems in ultra-low temperature propulsion environments.
  • Scientific Research and Cryogenic Laboratory Systems:Supports stable operation of laboratory liquid hydrogen systems and cryogenic experiments.
  • Energy Equipment and Deep Cryogenic Engineering:Applied in the transfer of liquid hydrogen and other ultra-low temperature fluids.
  • Advanced Materials and Manufacturing:Used in ultra-low temperature processing and cooling applications.
  • Industrial Liquid Hydrogen Applications:Provides reliable pipeline solutions for industrial systems requiring safe and efficient liquid hydrogen transfer.

ItemSpecification
Working Pressure2.0 MPa (customizable)
Working MediumLH2 (Liquid Hydrogen)
Pipeline Heat Loss0.5 – 2 W/m
Operating Ambient Temperature-30 to 50 ℃

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