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Cryogenic Helium Pump
Cryogenic Helium Pump
Cryogenic Helium Pump
Cryogenic Helium Pump

Cryogenic Helium Pump

High‑Performance Cryogenic Pump for Liquid and Gaseous Helium Transfer

The Cryogenic Helium Pump is a precision‑engineered pumping system designed for the safe and efficient transfer of liquid and gaseous helium under ultra‑low temperature conditions. Utilizing advanced cryogenic technology, it delivers stable flow, consistent pressure, and reliable performance in demanding helium applications. Built with helium‑compatible materials, precision sealing structures, and corrosion‑resistant components, the pump ensures minimal leakage, long service life, and dependable operation. It is widely used in superconducting systems, MRI facilities, quantum research laboratories, cryogenic experiments, and industrial helium supply networks requiring high‑efficiency helium circulation and transfer.

Description
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Product Overview

The Cryogenic Helium Pump is a key piece of equipment designed for the transfer of liquid or gas–liquid two-phase cryogenic media under extremely low-temperature conditions. It enables stable and efficient fluid transport in cryogenic environments.

The pump mainly consists of a motor, drive shaft, flow components, thermal insulation structure, bearings, and sealing systems. Through start–stop control and variable frequency regulation, the pump can achieve stable cryogenic fluid delivery and precise flow control.

It is suitable for liquid helium, liquid hydrogen, liquid nitrogen, and LNG systems, serving as an essential component in cryogenic circulation systems and cryogenic transfer systems. The equipment is widely used in scientific research, energy engineering, and industrial cryogenic applications.

Working Principle

The cryogenic helium pump generally operates based on the centrifugal pumping principle. The motor drives the impeller through a rotating shaft at high speed, generating centrifugal force that converts kinetic energy into pressure energy, enabling continuous and stable fluid transport.

The pump body adopts an efficient thermal insulation structure to minimize heat ingress from the external environment, thereby reducing the vaporization loss of cryogenic media. To adapt to extremely low-temperature operation, the bearing and sealing systems are specially optimized, ensuring long-term reliable performance in cryogenic conditions.

With the integration of a variable frequency control system, the pump can precisely adjust flow rate and head, meeting the requirements of various operating conditions.

Key Features

  • High Efficiency and Stability:High operating efficiency and suitable for long-term continuous cryogenic operation.
  • Low Heat Loss:Optimized insulation structure reduces external heat transfer and minimizes cryogenic fluid vaporization.
  • Compact Structure:Space-saving design facilitates system integration and installation.
  • Flexible Control:Supports start–stop control and variable frequency adjustment for flexible flow and pressure regulation.
  • Reliable and Durable:Key components are designed for cryogenic environments to ensure long-term stable operation.
  • Easy Maintenance:Rational structural design simplifies installation and maintenance, adapting to various cryogenic engineering requirements.

Applications

  • Cryogenic Research Systems:Liquid helium experimental platforms and superconducting technology systems.
  • Hydrogen Energy Engineering:Liquid hydrogen storage, transportation, and cryogenic propulsion systems.
  • Industrial Gas Systems:Liquid nitrogen supply, cryogenic cooling, and industrial gas circulation systems.
  • Natural Gas Cryogenic Engineering:LNG cryogenic transfer and circulation systems.
  • Cryogenic Energy & Research Equipment:Cryogenic engineering devices and fluid circulation systems used in energy equipment and scientific research experiments.

 

Pressure Rating (MPa)Medium Temperature (K)Flow Rate (m³·h⁻¹)Head (m)
≤1.6(Custom for higher pressure)≥40 K(Custom for lower temperature)0.1–0.51–10
0.5–25–20
2–510–60
5–1020–100
10–2020–150

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