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China Fullcryo Suppliers: Advanced Hydrogen Liquefaction Factory with 5-100T/Day Capacity
Product Description
"Large-scale Hydrogen Liquefaction Facility" refers to an industrial plant that is specifically designed to liquefy hydrogen gas on a significant scale. This facility is equipped with the necessary technology and infrastructure to efficiently convert large volumes of hydrogen from its gaseous state to a liquid state, which is achieved by cooling the gas to cryogenic temperatures. The liquefaction process enhances the energy density of hydrogen, making it more practical for storage and transportation, and is particularly useful for applications such as fuel cell vehicles, industrial processes, and energy storage systems.
Key Components and Working Principle
Pre-Cooling
Compression:
Hydrogen gas is compressed to high pressure using multi-stage compressors. This initial compression step is vital for the subsequent cooling process.
Initial Cooling:
The compressed hydrogen is pre-cooled using heat exchangers. Commonly, liquid nitrogen or other cryogenic fluids are used to lower the temperature of hydrogen before further cooling.
Heat Exchangers
Counterflow Heat Exchangers:
These are used to efficiently transfer heat between the high-pressure incoming hydrogen gas and the low-pressure, colder outgoing gas, maximizing energy efficiency.
Expansion
Turboexpanders:
The pre-cooled hydrogen undergoes expansion through turboexpanders, significantly reducing its temperature. Turboexpanders are efficient because they do work on the expanding gas, which cools it further.
Joule-Thomson (JT) Valves:
The hydrogen is further cooled using JT valves, which allow for controlled expansion and cooling of the gas to reach the liquefaction temperature.
Liquefaction
Cryogenic Cooling:
Through successive stages of cooling and expansion, the hydrogen gas reaches its liquefaction point at approximately 20.28 K. The liquid hydrogen is then collected in insulated storage vessels to maintain its cryogenic state.
Storage and Transfer
Insulated Storage Tanks:
Specially designed cryogenic tanks store liquid hydrogen, ensuring minimal heat transfer and preventing vaporization.
Transfer Lines:
Insulated transfer lines are used to move liquid hydrogen from the liquefaction unit to storage or usage points with minimal temperature loss.
Advantage
Hydrogen liquefaction capacity: 5-100T/Day
Oil-Free Reciprocating Compressor, in case of H2 Refrigeration
High-Efficient Oil Removal System, remove to <10 ppb
Oil-Injected Screw Compressor, in case of He Refrigeration
High-speed Turbo Expander
Vacuum Insulated Cold Box
Low Leakage Rate Heat Exchanger
Continuous Ortho-Para H2 Converters, built-in heat exchangers
Ortho-Para H2 Converters, built-in cold box
Multi-Stage Plate-Fin Heat Exchanger, leakage rate <10-9Pa.m/s
End-Stage Plate-Fin Heat Exchanger
Frequently Asked Questions
What is the capacity range of the Large-scale Hydrogen Liquefaction Facility?
The facility has a hydrogen liquefaction capacity ranging from 5 to 100 Tons per Day (T/Day).
What is the liquefaction temperature for hydrogen in this system?
Through successive stages of cooling and expansion, the hydrogen gas reaches its liquefaction point at approximately 20.28 K.
What types of compressors are utilized in the refrigeration system?
The facility utilizes an Oil-Free Reciprocating Compressor for H2 Refrigeration and an Oil-Injected Screw Compressor for He Refrigeration.
How does the expansion process work in the liquefaction cycle?
The system uses high-speed Turboexpanders to significantly reduce temperature by doing work on the expanding gas, followed by Joule-Thomson (JT) valves for controlled expansion to reach the final liquefaction temperature.
What is the leakage rate of the multi-stage plate-fin heat exchanger?
The multi-stage plate-fin heat exchanger features an extremely low leakage rate of less than 10-9 Pa.m/s.




