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Suction Pressure

Discharge Pressure

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Cooling Method

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Discharge Temperature(℃)
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CO2 Compressors from China Suppliers & Factory for Urea Synthesis, CCS, Refrigeration, Food, and Pharma Industries

This product employs advanced reciprocating piston and centrifugal compression technologies to effectively pressurize and transport low-pressure carbon dioxide. It is widely utilized in various applications, including urea synthesis, carbon capture and storage (CCS/CCUS), refrigeration systems, and across the food and pharmaceutical industries. As a leading China supplier and factory, we are dedicated to providing high-quality solutions tailored to meet the needs of our customers in these essential sectors

    Advantages of Carbon Dioxide Diaphragm Compressor

    • 01

      Absolutely Oil-Free and 100% Purity Retention

      The core of a diaphragm compressor lies in its use of a metal diaphragm to completely physically isolate the compressed gas from the hydraulic oil system. The cylinder requires no lubrication. This means that during the entire compression process, carbon dioxide gas does not come into contact with any grease or oil mist, fundamentally eliminating oil contamination. For food-grade CO₂, electronic-grade CO₂, or CO₂ used in high-end chemical synthesis, this characteristic ensures extremely high cleanliness and chemical purity of the product gas, fully meeting the most stringent application standards.

    • 02

      Superior Static Sealing and Intrinsic Safety

      The carbon dioxide gas is completely sealed within the "diaphragm cavity" formed by the diaphragm and cylinder head. This is a static sealing structure that theoretically achieves zero leakage. This not only effectively prevents the loss of valuable or hazardous gases, but also completely eliminates the asphyxiation safety risk caused by CO₂ accumulation in low-lying areas due to leakage. Simultaneously, this structure prevents potentially corrosive moist CO₂ from eroding the transmission components, enhancing the operational reliability of the equipment under harsh conditions.

    Key Design Points for Carbon Dioxide Diaphragm Compressor

    • 01

      Strict Material Selection for Corrosion Protection

      Since carbon dioxide forms carbonic acid when co-existing with moisture, which is corrosive to ordinary carbon steel, all flow-wetted components in contact with CO₂—including the cylinder head, diaphragm, gas valves, and piping—must be manufactured from corrosion-resistant materials. Austenitic stainless steels (such as 304, 316L) are typically selected, and strict degreasing, cleaning, and passivation treatments are performed after manufacturing to ensure lasting corrosion resistance and gas purity.

    • 02

      Precise Temperature & Pressure Control and Anti-Liquefaction

      The critical temperature of carbon dioxide is 31.03 °C. During compression, if cooling is insufficient and the gas temperature falls below this critical value while the pressure is high enough, a phase change to liquid is highly likely. Liquid CO₂ inside the compressor can cause a fatal "liquid hammer" phenomenon, damaging the diaphragm and cylinder head. The design must involve carefully calculating and controlling the compression ratio at each stage, and configuring high-efficiency interstage coolers (water-cooled or air-cooled) to ensure that the discharge temperature at each stage is effectively lowered. This strictly confines the operating points of the entire compression path to the gaseous region of CO₂, avoiding the risk of liquefaction.

    • 03

      Enhanced Safety Monitoring and Protection System

      Given the large coefficient of expansion of CO₂ under high-pressure storage (the pressure of a full cylinder can surge by 314 – 834 kPa for every 1 °C rise in temperature), the system must integrate multiple protections. Key design elements include: setting up accurate and reliable safety valves at each stage to prevent overpressure; equipping a diaphragm rupture detection and alarm device that can immediately alarm and shut down the compressor upon diaphragm failure to prevent gas-oil mixing; and installing gas concentration monitors in areas where CO₂ may accumulate, linked to the ventilation system. The control system (PLC) should integrate real-time monitoring and interlock shutdown functions for parameters such as pressure, temperature, and diaphragm status.

    Certificate

    eac
    ce
    iso
    iso2033
    atex

    Model Selection

    GZ
    ModelG70Z/G95Z/G110Z/G130Z
    Piston Stroke70mm~130mm
    Maximum Piston Force10KN~30KN
    Maximum Discharge Pressure70Mpa
    Flow Range1~500Nm³/h
    Motor Power2.2KW~30KW
    Crankshaft Speed420rpm
    Cooling MethodWater Cooled/Air Cooled
    GV
    ModelG70V/G95V/G130V
    Piston Stroke70mm~130mm
    Maximum Piston Force10KN~30KN
    Maximum Discharge Pressure50Mpa
    Flow Range1~200Nm³/h
    Motor Power2.2KW~30KW
    Crankshaft Speed420rpm
    Cooling MethodWater-cooled / Air-cooled
    GL
    ModelG110L/G130L
    Piston Stroke110mm~130mm
    Maximum Piston Force20KN~40KN
    Maximum Discharge Pressure100Mpa
    Flow Range10~1000Nm³/h
    Motor Power7.5KW~90KW
    Crankshaft Speed420rpm
    Cooling MethodWater-cooled / Air-cooled
    GD
    ModelG110D/G130D/G150D/G180D/G182D/G210D
    Piston Stroke110mm~210mm
    Maximum Piston Force20KN~160KN
    Maximum Discharge Pressure100Mpa
    Flow Range30~2000Nm³/h
    Motor Power22KW~200KW
    Crankshaft Speed420rpm
    Cooling MethodWater-cooled / Air-cooled
    G
    Diaphragm type compressor
    Z
    Piston stroke 70mm
    52
    Flow (Nm³/h)
    40
    Inlet pressure (barg)
    56
    Outlet pressure (barg)
    No. Model Cooling water Flow Inlet pressure Outlet pressure Dimensions L×W×H Weight Motor Power
    (L/h) (Nm³/h) (MPa) (MPa) (≈mm) (≈kg) (kW)
    1 GZ-52/40-56 500 52 4 5.6 1200×700×1100 450 3
    2 GZ-15/10-12 500 15 1 1.2 1200×700×1100 500 3
    3 GZ-20/7-30 500 20 0.7 3 1200×760×1100 750 4
    4 GV-60/8-60 1000 60 0.8 6 2600×1800×1700 3000 11
    5 GV-500/150-200 1500 500 15 20 2600×1800×1700 3000 18.5
    6 GV-160/(6-10)-75 2000 160 0.6-1 7.5 2600×1800×1700 3000 22
    7 GL-20/10-150 1500 20 1 15 2200×1200×1300 3000 15
    8 GL-25/5-150 1500 25 0.5 15 2200×1200×1300 3000 15
    9 GL-45/5-150 2000 45 0.5 15 2600×1300×1300 3000 18.5
    10 GD-40/150 4000 40 Atmospheric 15 3500×2000×1700 4000 37
    11 GD-300/50-200 4000 300 5 20 3600×2300×1800 4000 45
    12 GD-900/10-140 16000 900 1 14 4500×4000×2200 16000 200
    The equipment size and weight are for reference only, and the final design shall prevail.

    Case Study

    Russia Case Study

    Russia

    United States Case Study

    United States

    Spain Case Study

    Spain

    Kazakhstan Case Study

    Kazakhstan

    Frequently Asked Questions (FAQ)

    Why is a diaphragm compressor preferred for carbon dioxide compression?
    Diaphragm compressors completely isolate the gas from the hydraulic oil system using a metal diaphragm. This guarantees 100% oil-free compression, making it ideal for maintaining the high purity required in food-grade, electronic-grade, and chemical synthesis CO₂ applications.
    What materials are used to prevent corrosion in CO2 compressors?
    To prevent carbonic acid corrosion caused by moist carbon dioxide, all wetted parts (including the cylinder head, diaphragm, gas valves, and piping) are manufactured from corrosion-resistant austenitic stainless steels, such as 304 or 316L, followed by strict degreasing and passivation treatments.
    How does the compressor avoid liquid hammer during CO2 compression?
    The system carefully calculates compression ratios at each stage and utilizes high-efficiency interstage coolers. This strictly controls the gas temperature and pressure, keeping the operating points within the gaseous region and preventing carbon dioxide from liquefying under its critical temperature of 31.03°C.
    What is the purpose of the diaphragm rupture detection system?
    The rupture detection system monitors the integrity of the diaphragm layers. In the event of a tear or failure, it triggers an immediate alarm and shuts down the compressor (via PLC interlock) to prevent high-pressure gas from mixing with hydraulic oil, ensuring operational safety.
    Are these compressors suitable for explosive or hazardous environments?
    Yes. The static sealing design ensures zero gas leakage to the atmosphere. Furthermore, the equipment is certified to international safety standards like ATEX and CE, making it safe for use in hazardous areas where gas accumulation or explosive conditions might occur.